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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
191

Direkter Drucksensor unter Verwendung von Kohlenstoffnanoröhren-Nanokompositen

Dinh, Nghia Trong 28 April 2016 (has links)
Im Gegensatz zu herkömmlichen Dehnungsmessstreifen können Carbon nanotube (CNT)-basierte Komposite zusätzlich eine ausgeprägte Druck-abhängigkeit des Widerstandes aufweisen. Deshalb können Drucksensoren aus CNT-Nanokomposite ohne den Einsatz von Verformungskörpern wie z. B. Biegebalken aufgebaut werden. Die möglichen Anwendungsgebiete für diese direkt messenden Sensoren wurden in der vorliegenden Arbeit bei drei industriellen Anwendungen wie z. B. bei Robotergreifarmen gezeigt. Die Zielstellung dieser Arbeit ist die Entwicklung und Charakterisierung eines neuartigen Sensors aus CNT-Nanokomposite. Unter Verwendung von Multi-walled carbon nanotube (MWCNT)-Epoxidharz und interdigitalen Elektroden soll der Sensor auf wenigen Quadratzentimetern Drücke im Megapascal-Bereich und somit Kräfte im Kilonewton-Bereich messen können. Durch die Auswahl geeigneter Werkstoffe und die Modellierung mit der Finite Element Methode wurde der Sensorentwurf durchgeführt sowie der Messbereich abgeschätzt. Die Herstellung der MWCNT-Epoxidharz-Dispersion erfolgte durch mechanische Mischverfahren. Anschließend wurden aus der Dispersion druckempfindliche Schichten mit der Schablonendrucktechnik hergestellt. Dabei wurden die Herstellungs-parameter und besonders der Füllstoffgehalt der MWCNTs variiert, um deren Einflüsse auf das mechanische, thermische und elektrische Verhalten zu untersuchen. Die Charakterisierung der mechanischen Kenngrößen erfolgte mit Zugversuchen und dynamisch-mechanischer Analyse. In den Untersuchungen zeigen die MWCNT-Komposite eine signifikante Steigerung der Zugfestigkeit und eine Erhöhung der Glasübergangstemperatur gegenüber reinem Epoxidharz. Die Abhängigkeiten der Druckempfindlichkeit und der Temperaturempfindlichkeit vom Füllstoffgehalt wurden untersucht. Eine besonders hohe Druckempfindlichkeit, aber auch Temperaturempfind-lichkeit wurde bei Proben mit geringem Füllstoffgehalt (1 wt% und 1,25 wt%) festgestellt. Es ist also wichtig, die richtige Materialkombination für diese Art Sensor zu finden. Die realisierten Sensoren liefern zuverlässige Antwortsignale bei wiederholten Belastungen bis zu einer Belastung von 20 MPa (entspricht 2 kN). Zusätzlich wurde der Temperatureinfluss in einem Bereich von −20 °C bis 50 °C durch eine Wheatstonesche Brückenschaltung kompensiert. Die vorliegende Arbeit zeigt, dass eine zuverlässige Druckmessung mit einer Temperaturmessabweichung von 0,214 MPa/10 K gewährleistet werden kann. / In contrast to conventional metallic strain gauges, carbon nanotube (CNT) composites have an additional pressure sensitivity. Therefore, deformation elements such as bending beam is not needed by using pressure sensors, which are based on CNT nanocomposite. The possible areas of application for these pressure direct measured sensors were showed in three industrial application such as robot gripper. The focus of this work is the development and characterization of a new sensor manufactured from CNT nanocomposite. By using multi-walled carbon nanotube (MWCNT) epoxy and interdigital electrodes the sensor, which has a dimension of few square centimetre, should measure a pressure in mega Pascal range and hence a force in kilo newton range. By the selection of suitable materials and the modelling using finite element method, the sensor design as well as the measurement range were carried out. The MWCNT epoxy dispersion is manufactured by using a mechanical mixing process. Subsequent, the dispersion is used to fabricate pressure sensitive layers by stencil printing methods. Thereby, the fabrication parameters and especially the filler content of the MWCNTs were varied for the mechanical, thermal and electrical investigation. The characterization of the mechanical characteristic values were carried out by using tensile test and dynamic mechanical analysis. The results show a significant increasing of the tensile strength and glass transition temperature in comparison to neat epoxy. Additionally, the influence of the filler content to the pressure and thermal sensitivity were investigated. A highly pressure sensitivity but also a highly thermal sensitivity are obtained for samples with lower filler contents (1 wt% and 1.25 wt%). Therefore, a suitable material combination has to be chosen. The fabricated sensors show reliable response signals by repeated excitations up to 20 MPa (meets to 2 KN). Moreover, the temperature influence ranged from -20 °C to 50 °C was compensated with a Wheatstone bridge. This work demonstrate a direct pressure sensitive sensor with reliable response signals by a thermal deviation of 0.214 MPa/10K.
192

Feldeffekttransistoren auf Basis von Kohlenstoffnanoröhrchen: Vergleich zwischen atomistischer Simulation und Bauelementesimulation

Fuchs, Florian 20 November 2014 (has links)
Kohlenstoffnanoröhrchen (CNTs) sind vielversprechende Kandidaten für neuartige nanoelektronische Bauelemente, wie zum Beispiel Transistoren für Hochfrequenzanwendungen. Simulationen CNT-basierter Bauelemente sind dabei unverzichtbar, um deren Anwendungspotential und das Verhalten in Schaltungen zu untersuchen. Die vorliegende Arbeit konzentriert sich auf einen Methodenvergleich zwischen einem atomistischen Ansatz basierend auf dem Nichtgleichgewichts-Green-Funktionen-Formalismus und einem Modell zur numerischen Bauelementesimulation, welches auf der Schrödinger-Gleichung in effektiver-Massen-Näherung basiert. Ein Transistor mit zylindrischem Gate und dotierten Kontakten wird untersucht, wobei eine effektive Dotierung genutzt wird. Es wird gezeigt, dass die Beschränkungen des elektronischen Transports durch Quan- teneffekte im Kanal nur mit dem atomistischen Ansatz beschrieben werden können. Diese Effekte verhindern das Auftreten von Band-zu-Band-Tunnelströmen, die bei der numerischen Bauelementesimulation zu größeren Aus-Strömen und einem leicht ambipolaren Verhalten führen. Das Schaltverhalten wird hingegen von beiden Modellen vergleichbar beschrieben. Durch Variation der Kanallänge wird das Potential des untersuchten Transistors für zukünftige Anwendungen demonstriert. Dieser zeigt bis hinab zu Kanallängen von circa 8 nm einen Subthreshold-Swing von unter 80 mV/dec und ein An/Aus-Verhältnis von über 10⁶.:Abkürzungsverzeichnis Symbolverzeichnis Konstanten Mathematische Notation 1. Einleitung 2. Feldeffekttransistoren auf Basis von Kohlenstoffnanoröhrchen 2.1. Geometrische Struktur von Kohlenstoffnanoröhrchen 2.2. Elektronische Eigenschaften von Kohlenstoffnanoröhrchen 2.3. Feldeffekttransistoren auf Basis von Kohlenstoffnanoröhrchen 2.3.1. Möglichkeiten der Kontaktierung 2.3.2. Geometrie des Gates 2.3.3. Kenngrößen zur Transistor-Charakterisierung 3. Simulationsmethoden 3.1. Grundlegende Begriffe 3.1.1. Schrödinger-Gleichung, Wellen- und Basisfunktion 3.1.2. Elektronendichte 3.1.3. Zustandsdichte 3.2. Atomistische Elektronenstrukturrechnung 3.2.1. Dichtefunktionaltheorie 3.2.2. Erweiterte Hückelmethode 3.3. Quantentransport 3.3.1. Streumechanismen und Transportregime 3.3.2. Landauer-Büttiker-Formalismus 3.3.3. Nichtgleichgewichts-Green-Funktionen-Formalismus 3.4. Numerische Bauelementesimulation 3.4.1. Schrödinger-Gleichung in effektiver-Massen-Näherung 3.4.2. Beschreibung der Kontakte 3.4.3. Lösung der Poisson-Gleichung 3.4.4. Selbstkonsistente Rechnung 4. Entwicklung des Modellsystems 4.1. Beschaffenheit des Kanals 4.2. Eigenschaften der Gate-Elektrode 4.3. Eigenschaften der Source- und Drain-Elektroden 5. Ergebnisse und Diskussion 5.1. Numerische Bauelementesimulation 5.1.1. Extraktion der Parameter 5.1.2. Einfluss verschiedener Faktoren auf das Kohlenstoffnanoröhrchen 5.1.3. Transistorverhalten und Transistorregime 5.2. Atomistische Simulation 5.2.1. Einfluss verschiedener Faktoren auf das Kohlenstoffnanoröhrchen 5.2.2. Transistorverhalten und Transistorregime 5.2.3. Einfluss der Dotierung 5.3. Variation der Kanallänge und Methodenvergleich 5.3.1. Diskussion der Transfercharakteristiken 5.3.2. Verhalten von An/Aus-Verhältnis und Subthreshold-Swing 5.4. Variation der Gate-Länge bei fester Kanallänge und Methodenvergleich 5.5. Abschließende Bemerkungen und Vergleich mit Literatur 6. Zusammenfassung der Ergebnisse und Ausblick A. Elektronische Struktur des (7,0)-Kohlenstoffnanoröhrchens B. Simulationsparameter B.1. Parameter für Rechnungen mit Dichtefunktionaltheorie B.2. Parameter für Rechnungen mit erweiterter Hückelmethode B.3. Verwendete Randbedingungen zur Lösung der Poisson-Gleichung C. Vergleich zwischen Dichtefunktionaltheorie und erweiterter Hückelmethode C.1. Physikalische Betrachtung C.2. Rechenzeit und Konvergenz Literaturverzeichnis Abbildungsverzeichnis Tabellenverzeichnis Danksagung Selbstständigkeitserklärung
193

Manufacturing and experimental investigation of green composite materials / Κατασκευή και μελέτη σύνθετων υλικών φιλικών προς το περιβάλλον

Κουτσομητοπούλου, Αναστασία 30 April 2014 (has links)
The aim of the present thesis is to explore sustainable low cost environmentally friendly composite materials. It is a step by step experimental research. Firstly, taking under consideration the so far commercial available non-organic materials used as reinforcement and the petroleum based resins used as matrices, composite materials were fabricated and mechanically characterized. Different components in micro- and nano- scale were combined. Afterwards, the non-organic materials used as reinforcements were substituted by different types of non conventional natural-based fillers. The fillers (corn starch and olive pit granules) were in powder form, derived from agricultural local resources and additionally flax fabric used to produce laminated composites. All the semi-green epoxy composites were characterized by means of three-point bending testing. Moreover, the manufactured composites were induced in several sources of damage and their residual properties were extensively investigated. More precisely, the effect of the strain-rate and low velocity impact as well as of thermal fatigue, on the mechanical properties of the olive pit and the flax fabric reinforced resin was studied. Since, conventional and semi-green composite materials were fabricated and experimentally investigated, the final objective of the present thesis was to produce novel green composites materials by substituting the petroleum-based epoxy resin with a biodegradable derived from natural resources biopolyester. In order to accomplish this target, polylactic acid (PLA) was combined with olive pits in powder form at different concentrations. Olive pits, is almost unknown non-traditional filler to composites, obtained during the oil extraction process. It is a raw material characterized by its low cost and its abundance, since it consists a waste product of the olive oil industry. In order to successfully accomplish this part of research, experiments were taken place in France at the CMGD (Centre des Matériaux de Grande Diffusion) Institute of the École Nationale Supérieure des Mines d’ Alés, under the guidance of Prof. A. Bergeret within the framework of research cooperation with the main supervisor of this thesis, Prof. G. Papanicolaou. The most important feature of the present green composites is their satisfactory mechanical and thermal performance in combination with their complete biodegradability. The PLA/olive pit composites could be applied to various components with moderate strength such as automotive interiors, interior building applications, durable goods, serviceware and food packaging material The aim of this part of the study was to investigate the effect of three types of olive pit powder at different weights fractions on the physical and mechanical properties of polylactide (PLA) matrix composites. For the preparation of the powder, two different grinding procedures were applied, producing three types of olive pit powder. Various measurements were accomplished to determine characteristics such as the density and the size distribution and the shape of the powder. Different PLA/ olive pits powder composites were manufactured by extrusion and injection molding. A comparative study between the different composites was made in order to investigate the matrix-filler interactions, occurring between the PLA and olive pit granules and their overall physical, mechanical and thermomechanical properties were investigated by means of TGA, FT-IR, DSC, SEM, flexural and uni-axial tensile testing. Finally, theoretical predictive models were applied in most of the composite materials manufactured in the present work. These models making use of minimal number of experimental results can satisfactorily predict the residual properties of damaged materials, irrespectively of the type of the material investigated and the damage source. Namely, the Modulus Predictive Model (ΜPM), the Residual Properties Model (RPM) and the Residual Strength after Impact Model (RSIM), have been successfully applied. A big number of interesting conclusions have been derived from the present work. However, a general conclusion is that a totally green composite with useful properties and applications is a promising target for the humanity and the planet survivability. / Σκοπός της παρούσας διδακτορικής διατριβής είναι η κατασκευή και μελέτη συνθέτων υλικών χαμηλού κόστους ενισχυμένων με φυσικά υλικά, φιλικά προς το περιβάλλον. Η επίτευξη αυτού του στόχου πραγματοποιήθηκε σταδιακά. Αρχικά, πραγματοποιήθηκε μια εκτεταμένη μελέτη διαφορετικών συνθέτων υλικών τα οποία ήταν εξ’ ολοκλήρου κατασκευασμένα από ανόργανα και συνθετικά υλικά. Γι’ αυτό το σκοπό κατασκευάστηκαν και μελετήθηκαν οι μηχανικές ιδιότητες συνθέτων υλικών που έχουν ως μήτρα μια εμπορικά διαθέσιμη πετροχημική εποξειδική ρητίνη. Η εποξειδική ρητίνη ενισχύθηκε με ανόργανα υλικά σε μικρο- (συμπαγή και κενά σφαιρίδια γυαλίου) και νανο- (νανοσωλήνες άνθρακα πολλαπλού τοιχώματος) διαστάσεις. Στη συνέχεια, βασιζόμενη στο ήδη υπάρχον επιστημονικό υπόβαθρο, καθώς η μεταπτυχιακή μου εργασία ειδίκευσης ήταν στο ίδιο ερευνητικό πεδίο με το αντικείμενο της διδακτορικής μου διατριβής, γίνεται προσπάθεια περαιτέρω εξέλιξης της έρευνας που σχετίζεται με την μελέτη και κατασκευή συνθέτων φιλικών προς το περιβάλλον. Ως εκ τούτου, το επόμενο στάδιο της πειραματικής μελέτης στα πλαίσια εκπόνησης της διατριβής αυτής, ήταν η κατασκευή και χαρακτηρισμός, ως προς την μηχανική τους συμπεριφορά, συνθέτων υλικών πολυμερικής εποξειδικής μήτρας ενισχυμένης με διαφορετικού τύπου φυσικές ενισχύσεις και περιεκτικότητες. Οι φυσικές ενισχύσεις που επιλέχθηκαν να μελετηθούν ήταν τόσο σε μορφή κόκκων και μικρο-ινών, όσο και σε μορφή υφάσματος. Τα εγκλείσματα που χρησιμοποιήθηκαν ήταν σκόνη από κόκκους ελαιοπυρήνα και σκόνη αμύλου καλαμποκιού. Στα σύνθετα υλικά ενισχυμένα με κόκκους ελαιοπυρήνα, έγινε μελέτη της επίδρασης των διαφορετικών ρυθμών παραμόρφωσης στις μηχανικές τους ιδιότητες, ενώ στα σύνθετα υλικά ενισχυμένα με την σκόνη αμύλου μελετήθηκαν εκτενώς οι στατικές μηχανικές τους ιδιότητες. Επιπλέον, κατασκευάστηκαν πολύστρωτα σύνθετα υλικά χρησιμοποιώντας για τις διάφορες στρώσεις ύφασμα από ίνες λιναριού. Τα πολύστρωτα σύνθετα υλικά χαρακτηρίστηκαν ως προς τις μηχανικές τους ιδιότητες, υποβλήθηκαν σε θερμική κόπωση και υπέστησαν κρούση χαμηλής ενέργεια. Οι εναπομένουσες μηχανικές ιδιότητες των υλικών αυτών μελετήθηκαν τόσο πειραματικά όσο και θεωρητικά. Ο απώτερος στόχος αυτής της διδακτορικής διατριβής ήταν να γίνει η δυνατή η κατασκευή συνθέτων υλικών τα οποία να είναι πλήρως βιοδιασπώμενα και φιλικά προς το περιβάλλον. Για το σκοπό αυτό, το τρίτο και τελευταίο στάδιο της έρευνας που διεξήχθη στα πλαίσια της παρούσας διατριβής, ήταν η κατασκευή εξολοκλήρου φυσικών συνθέτων υλικών έχοντας ως μήτρα ένα βιοδιασπώμενο πολυεστέρα φυτικής προέλευσης, το πολύ (γαλακτικό οξύ), ενισχυμένο με σκόνη από κόκκους ελαιοπυρήνα. Ο ξηρός ελαιοπυρήνας που χρησιμοποιήθηκε, αποτελεί μέρος των αποβλήτων που προκύπτουν από την διαδικασία παραγωγής ελαιολάδου. Ο ελαιοπυρήνας σε αυτή την μορφή έχοντας μηδαμινό κόστος απαντάται σε εξαιρετικά μεγάλες ποσότητες και σε σημαντικό ποσοστό εναποτίθεται στους περιβάλλοντα χώρους των μονάδων παραγωγής του ελαιολάδου. Η ερευνητική εργασία που σχετίζεται με αυτό το αντικείμενο του διδακτορικού έλαβε χώρα στην Γαλλία στο École Nationale Supérieure des Mines d’ Alés, στο ερευνητικό ινστιτούτο CMGD (Centre des Matériaux de Grande Diffusion) υπό την επίβλεψη της καθηγήτριας A. Bergeret, στα πλαίσια ερευνητικής συνεργασίας του επιβλέποντα καθηγητή Γ. Παπανικολάου και της ερευνητικής του ομάδας. Τα πειράματα που διεξήχθησαν στο ερευνητικό ινστιτούτο CMGD, περιελάμβαναν αρχικά την προετοιμασία των κόκκων του ελαιοπυρήνα στην κατάλληλη μορφή για να είναι δυνατή η χρησιμοποίησή τους ως ενισχυτικό υλικό. Έγινε κονιορτοποίηση των κόκκων από την οποία προέκυψαν δύο τύπου σκονών που διέφεραν ως προς την διασπορά του μεγέθους των κόκκων, ενώ μια τρίτη σκόνη ελαιοπυρήνα είχε ήδη προετοιμαστεί με διαφορετική μέθοδο κονιορτοποίησης στο τμήμα Επιστήμης των Υλικών του Πανεπιστήμιου Πατρών. Έγινε εκτενής χαρακτηρισμός των φυσικών και μορφολογικών ιδιοτήτων όλων των σκονών ελαιοπυρήνα που χρησιμοποιήθηκαν για την κατασκευή των συνθέτων υλικών με μήτρα το PLA. Προσδιορίστηκαν διαφορετικού τύπου πυκνότητες και η διασπορά του μεγέθους των κόκκων. Έγινε θερμική ανάλυση με δοκιμή θερμοζυγού (TGA), μορφολογικός χαρακτηρισμός με χρήση ηλετρονικού μικροσκοπίου σάρωσης (SEM) καθώς και χαρακτηρισμός με φασματοσκοπία υπερύθρου με μετασχηματισμό Fourier (FT IR) και ακτίνων-Χ. Αφού ολοκληρώθηκε ο χαρακτηρισμός των ιδιοτήτων της ενισχυτικής φάσης, στη συνέχεια κατασκευάστηκαν σύνθετα υλικά μήτρας PLA ενισχυμένα με τους κόκκους ελαιοπυρήνα σε διαφορετικές περιεκτικότητες. Η προετοιμασία των σύνθετων αυτών υλικών πραγματοποιήθηκε σε δύο στάδια. Αρχικά έγινε μια πρώτη μορφοποίηση με εξώθηση (extrusion). Τα σύνθετα υλικά που προέκυψαν από την εξώθηση που ήταν στη μορφή δισκίων (pellets) χαρακτηρίστηκαν και αυτά με διάφορες τεχνικές (WAXD, DSC, TGA). Τα σύνθετα υλικά υπό μορφή δισκίων για να αποκτήσουν την τελική τους μορφή ως δοκίμια κατάλληλα για μηχανικές δοκιμές κατά τα πρότυπα ISO 527, μορφοποιήθηκαν με έγχυση (Injection molding). Τα σύνθετα υλικά στην τελική τους μορφή χαρακτηρίστηκαν με διάφορες τεχνικές (WAXD, DSC, TGA), έγινε χαρακτηρισμός των μηχανικών τους ιδιοτήτων και μορφολογική παρατήρηση των επιφανειών τους ύστερα από την μηχανική τους αστοχία (SEM). Τέλος, σε πολλά από τα σύνθετα υλικά που κατασκευάστηκαν και μελετήθηκαν πειραματικά, εφαρμόστηκαν διαφορετικά ημιεμπειρικά μοντέλα ανάλυσης και πρόβλεψης της μηχανικής τους συμπεριφοράς. Στο κυρίως κείμενο της διδακτορικής διατριβής, περιγράφεται σε ξεχωριστό κεφάλαιο το σύνολο των θεωρητικών μοντέλων που εφαρμόστηκαν στα πειραματικά αποτελέσματα. Στα επιμέρους κεφάλαια που παρουσιάζονται και αναλύονται τα πειραματικά αποτελέσματα, παρατίθενται η σύγκρισή τους με τις αντίστοιχες προβλέψεις που πρόεκυψαν από την εφαρμογή των θεωρητικών μοντέλων. Από τη σύγκριση αυτή παρατηρούμε ότι τα θεωρητικά μοντέλα που εφαρμόστηκαν που είναι το μοντέλο πρόβλεψης του μέτρου ελαστικότητας κοκκωδών υλικών, ΜPM (Modulus Predictive Model), το μοντέλο πρόβλεψης της υποβάθμισης ιδιοτήτων ύστερα από διαφορετικές είδους καταπονήσεις (θερμική κόπωση, κρούση χαμηλής ενέργειας και του ρυθμού παραμόρφωσης σε κάμψη τριών σημείων), RPM (Residual Properties Model) και το μοντέλο πρόβλεψης της υποβάθμισης της αντοχής των υλικών ύστερα από κρούση, Residual Strength after Impact Model (RSIM), έδωσαν ικανοποιητικές προβλέψεις για την μεταβολή των ιδιοτήτων κάνοντας χρήση ελάχιστων μόνο πειραματικών σημείων. Στην παρούσα διατριβή συνδυάστηκαν δύο διαφορετικού τύπου πολυμερικές ρητίνες με πληθώρα ενισχυτικών υλικών για την κατασκευή και μελέτη της μηχανικής τους συμπεριφοράς, τόσο πειραματικά όσο και θεωρητικά με την εφαρμογή ημιεμπειρικών μοντέλων πρόβλεψης και ανάλυσης. Για την κατασκευή των δοκιμίων, ανάλογα με τον τύπο του υλικού της μήτρας και της ενίσχυσης, εφαρμόστηκαν διαφορετικές τεχνικές και σύνθετες πειραματικές διαδικασίες. Ενώ, για την μελέτη των μηχανικών, θερμομηχανικών και μορφολογικών τους ιδιοτήτων εφαρμόστηκε σημαντικός αριθμός διαφορετικών τεχνικών χαρακτηρισμού.
194

Matériaux nanostructurés polymères conjugués/nanotubes de carbone verticalement alignés pour la réalisation de supercondensateurs / Nanostructured materials based on conjugated polymers and vertically aligned carbon nanotubes for supercapacitor applications

Porcher, Marina 14 December 2016 (has links)
Les travaux réalisés dans le cadre de cette thèse ont porté sur la réalisation de matériaux composites nanostructurés à base de nanotubes de carbone verticalement alignés (NTC alignés) et de polymères π-conjugués en vue de leur utilisation en tant que matériaux d’électrodes dans des dispositifs de stockage d’énergie de type supercondensateurs. Dans une première partie, les travaux se sont focalisés sur la croissance par CVD d’aérosol de NTC sur des substrats d’acier inoxydable via le dépôt préalable d’une sous-couche céramique SiOx. Grâce à l’optimisation de ce procédé, des tapis de NTC longs, denses et alignés pouvant directement servir de supports à l’électrodépôt de polymères π-conjugués ont pu être obtenus. Dans une seconde partie, les travaux se sont concentrés sur l’électrodépôt de poly(3-méthylthiophène) (P3MT) en milieu liquide ionique EMITFSI sur les tapis de NTC alignés à partir d’une méthode chronopotentiométrique « séquencée » permettant de réaliser des dépôts homogènes dans la profondeur des tapis. Une composition massique optimale de 70 % de P3MT permettant d’atteindre des capacitances spécifiques de 170 F.g-1 de polymère tout en conservant des cinétiques de charge-décharges élevées, comparativement à des composites NTC/P3MT enchevêtrés, a pu être déterminée. A partir des matériaux composites optimisés, des dispositifs symétriques NTC/P3MT // P3MT/NTC et hybrides CA // P3MT/NTC ont été assemblés. Le dispositif hybride à notamment permis d’atteindre une tension de 2,7 V et une capacitance de système de 26 F.g-1 en milieu EMITFSI à 25 °C. Par ailleurs, une énergie maximale de 23 Wh.kg-1 et une puissance maximale de 6,9 kW.kg-1 ont été obtenues avec une perte de seulement 7 % après 4000 cycles. Pour finir, l’électrodépôt de polypyrrole (Ppy) a été étudié dans différents milieux liquides ioniques protiques et aprotiques. Après des études réalisées par microbalance à cristal de quartz permettant de mieux comprendre les mécanismes d’insertion des espèces ioniques lors de la croissance du polymère conjugué et lors de son dopage positif réversible, des dépôt de Ppy ont été réalisés et optimisés dans la profondeur des tapis de NTC alignés. Des nanocomposites NTC alignés/Ppy présentant des capacitances spécifiques comprises entre 100 et 130 F.g-1 ont ainsi pu être obtenus. / This thesis focused on the elaboration of nanostructured composite materials based on vertically aligned carbon nanotubes (aligned CNT) and π-conjugated polymers and their use as electrode materials in supercapacitor-type energy storage devices. The first part focused on aligned CNT growth by aerosol-assisted CVD on stainless steel substrates and the deposition of a SiOx ceramic sublayer. Thanks to the optimization of this growth process, long, dense, and aligned CNT carpets which can directly act as support for the electrodeposition of π-conjugated polymers were obtained. The second part focused on the electrodeposition of poly (3-methylthiophene) (P3MT) in EMITFSI ionic liquid medium on aligned CNT carpets using a “pulsed” chronopotentiometric method to produce homogeneous deposits in the depth of the carpets. An optimal P3MT mass composition of 70 %, which helped achieve a specific capacitance of 170 F.g-1 of polymer while maintaining high charge-discharge kinetics, compared with NTC/P3MT entangled composites, was determined. NTC/P3MT // P3MT/NTC symmetrical devices and CA // P3MT/NTC hybrid devices were assembled using the optimized composite materials. The hybrid device reached a voltage of 2.7 V and a system capacitance of 26 F.g-1 in EMITFSI at 25 ° C. Furthermore, a maximum energy of 23 Wh.kg-1 and a maximum power of 6.9 kW.kg-1 were obtained with only a 7 % loss after 4000 cycles. Finally, the electrodeposition of polypyrrole (Ppy) was investigated in different protic and aprotic ionic liquids. After quartz crystal microbalance studies in order to better understand the insertion mechanisms of ionic species during conjugated polymer growth and during its reversible positive doping, the electrodeposition of Ppy within the deepness of the aligned CNT carpets was optimized. Aligned CNT/Ppy nanocomposites with specific capacitances ranging between 100 and 130 F.g-1 were obtained.
195

3D integration of single electron transistors in the back-end-of-line of 28 nm CMOS technology for the development of ultra-low power sensors / Intégration 3D de dispositifs SETs dans le Back-End-Of-Line en technologies CMOS 28 nm pour le développement de capteurs ultra basse consommation

Ayadi, Yosri 16 December 2016 (has links)
Les systèmes mobiles intelligents sont déjà dotés de plusieurs composants de type capteur comme les accéléromètres, les thermomètres et les détecteurs infrarouge. Cependant, jusqu’à aujourd’hui l’intégration de capteurs chimiques dans des systèmes compacts sur puce reste limitée pour des raisons de consommation d’énergie et dissipation de chaleur principalement. Le travail présenté dans cette thèse fut donc concentrée sur la démonstration de l’intégration 3D monolithique de SETs sur un substrat de technologie CMOS (Complementary Metal Oxide Semiconductor) pour la réalisation de la fonction capteurs de gaz très sensible et ultra basse consommation d’énergie. L’approche proposée consiste à l’intégration de SETs métalliques à double grilles dans l'unité de fabrication finale BEOL (Back-End-Of-Line) d'une technologie CMOS à l’aide du procédé nanodamascene. L'objectif principal de cette thèse de doctorat peut être divisé en 4 parties : (1) la modélisation et simulation de la réponse d’capteur de gaz à base de SET à double grilles ou d’un MOSFET FD-SOI, et l’estimation de la sensitivité ainsi que la puissance consommée; (2) la caractérisation de la sensitivité du Pt comme couche sensible pour la détection du H2 par la technique de mesure de charge de surface, et le développement du procédé de texturation de surface de la grille fonctionnalisée avec les réseaux de nanotubes de carbone; (3) le développement et l’optimisation du procédé de fabrication des SETs à double grilles dans l’entité BEOL d’un substrat CMOS; et (4) la fonctionnalisation d’un MOSFET FD-SOI avec du Pt pour réalise la fonction de capteur de H2. / The need of integration of new functionalities on mobile and autonomous electronic systems has to take into account all the problematic of heterogeneity together with energy consumption and thermal power dissipation. Therefore, the work presented in this thesis is focussed on the proof of concept of 3D monolithical integration of SETs on CMOS technology for high sensitivity and ultra-low power gas sensing functionality. The proposed approach is to integrate metallic double gate-single electron transistors (DG-SETs) in the Back-End-Of-Line (BEOL) of CMOS circuits (within the CMOS interconnect layers) using the nanodamascene process. The main objective of this Ph.D. thesis can be divided into 4 parts: (1) modelling and simulation of a DG-SET and an FD-SOI MOSFET based gas sensor response, and estimation of the sensitivity as well as the power consumption; (2) investigation of Pt sensitivity to hydrogen by surface charge measurement technique and development of the sensing electrode surface texturing process with CNT networks; (3) development and optimization of DG-SET integration process in the BEOL of a CMOS substrate, and (4) FD-SOI MOSFET functionalization with Pt for H2 sensing.
196

Electron Filed Emission Studies of Nanostructured Carbon Materials

Ivaturi, Sameera January 2012 (has links) (PDF)
Field emission is the emission of electrons from a solid under an intense electric field, of the order of 109 V/m. Emission occurs by the quantum mechanical tunneling of electrons through a potential barrier to vacuum. Field emission sources offer several attractive features such as instantaneous response to field variation, resistance to temperature fluctuation and radiation, a high degree of focusing ability in electron optics, good on/off ratio, ballistic transport, and a nonlinear current-voltage relationship. Carbon nanotubes (CNTs) are potential candidates as field emitters since they possess high aspect ratio and are chemically inert to poisoning, and physically inert to sputtering during field emission. They can carry a very high current density and do not suffer field-induced tip sharpening like metallic tips. In addition, the CNT field emitters have the advantage of charge transport through 1D channels and electron emission at the sharp tips due to large enhancement. But the injection of electrons from the back contact remains a technical challenge which requires binding of CNT emitters to metallic substrate. Also, detachment of the CNT from the substrate tends to occur with time. The electrically conducting mixtures of CNTs and polymer can provide an alternative route to address these issues in the field emission of CNTs. The composites can be casted on any substrate in desired shape and the polymer matrix provides necessary support. The research work reported in this thesis includes the preparation of high quality multiwall carbon nanotubes (MWCNTs), MWCNT-polystyrene (PS) composites, and experimental investigation on field emission properties of MWCNT¬PS composites in two different configurations. Electrical conductivity and percolation threshold of the MWCNT-PS composites are also investigated to ensure their high quality prior to the field emission studies. The study has been further extended to reduced graphene oxide (rGO) coated on polymer substrate. The main results obtained in present work are briefly summarized below. This thesis contains eight chapters. Chapter 1 provides an overview of basics of field emission, and the potential of CNT and CNT-polymer composites as field emitters. Chapter 2 deals with the concise introduction of various structural characterization tools and experimental techniques employed in this study. Chapter 3 describes the synthesis of MWCNTs and characterization by using electron microscopy and Raman spectroscopy. MWCNTs are synthesized by chemical vapor deposition (CVD) of toluene [(C6H5) CH3] and ferrocene [(C5H5)2 Fe] mixture at 980 °C. Here toluene acts as carbon source material and ferrocene provides catalytic iron (Fe) particles. The MWCNT formation is based on the thermal decomposition of the precursor mixture. Scanning electron microscopy (SEM) characterization shows that the MWCNTs are closely packed and quite aligned in one direction. The average length of MWCNTs is about 200 μm and outer diameter lies in the range of 50-80 nm. The high quality of as-prepared MWCNT sample is confirmed by Raman spectroscopy. The as-grown MWCNTs are encapsulated with catalytic Fe nanoparticles, revealed by transmission electron microscopy. The Fe nanoparticles trapped within the MWCNT serve as fantastic system for studying the magnetic properties. Three types of MWCNT samples filled with Fe nanoparticles of different aspect ratio (~10, 5 and 2) are synthesized by varying the amount of ferrocene in the precursor material, and their magnetic properties are investigated. Enhanced values of coercivity (Hc) are observed for all samples, Hc being maximum (~2.6 kOe) at 10 K. The enhancement in Hc values is attributed to the strong shape anisotropy of Fe nanoparticles and significant dipolar interactions between Fe nanoparticles. Chapter 4 deals with the field emission studies of MWCNT-PS composites in the parallel configuration. By incorporating as-prepared MWCNTs in PS matrix in a specific ratio, composites with varying loading from 0.01-0.45 weight (wt.) fraction are prepared using solution mixing and casting. High degree of dispersion of MWCNTs in PS matrix without employing any surfactant is achieved by ultrasonication. Low percolation threshold (~0.0025 wt. fraction) in the MWCNT-PS composites ensures the good connectivity of filler in the fabricated samples. Field emission of MWCNT¬PS composites is studied in two different configurations: along the top surface of the film (parallel configuration) and along the cross section of the sample (perpendicular configuration). In this chapter field emission results of the MWCNT-PS composites in parallel configuration are presented. The effect of charge transport in limiting the field emission of MWCNT-PS composite is discussed. Field emission results of MWCNT-PS composites in parallel configuration indicate that the emission performance can be maximized at moderate wt. fraction of MWCNT (0.15). The obtained current densities are ~10 µA/cm2 in the parallel configuration. Chapter 5 presents the study of field emission characteristics of MWCNT¬PS composites of various wt. fractions in the perpendicular configuration. Till date most studies using nanotube composites tend to have the nanotubes lying in two dimensional plane, perpendicular to the applied electric field. In the perpendicular configuration, the nanotubes are nearly aligned parallel to the direction of the applied electric field which results in high field enhancement, and electron emission at lower applied fields. SEM micrographs in cross-sectional view reveal that MWCNTs are homogeneously distributed across the thickness and the density of protruding tubes can be scaled with wt. fraction of the composite film. Field emission from composites has been observed to vary considerably with density of MWCNTs in the polymer matrix. High emission current density of 100 mA/cm2 is achieved at a field of 2.2 V/µm for 0.15 wt. fraction. The field emission is observed to follow the Fowler– Nordheim tunneling mechanism, however, electrostatic screening plays a role in limiting the current density at higher wt. fractions. Chapter 6 highlights the field emission response of rGO coated on a flexible PS film. Field emission of rGO coated PS film along the cross section of the sample is studied in addition to the top film surface of the film. The effect of geometry on the improved field emission efficiency of rGO coated polymer film is demonstrated. The emission characteristics are analyzed by Fowler–Nordheim tunneling for field emission. Low turn-on field (~0.6 V/µm) and high emission current (~200 mA/cm2) in the perpendicular configuration ensure that rGO can be a potential field emitter. Furthermore, stability and repeatability of the field emission characteristics are also presented. Chapter 7 deals with the synthesis, characterization, and field emission of two different kinds of hybrid materials: (1) MWCNT coated with zinc oxide (ZnO) nanoparticles (2) ZnO/graphitic carbon (g-C) core-shell nanowires. The field emission from the bucky paper is improved by anchoring ZnO nanoparticles on the surface of MWCNT. A shift in turn on field from 3.5 V/µm (bucky paper) to 1.0 V/µm is observed by increasing the ZnO nanoparticle loading on the surface of MWCNT with an increase in enhancement factor from 1921 to 4894. Field emission properties of a new type of field emitter ZnO/g-C core-shell nanowires are also presented in this chapter. ZnO/g-C core/shell nanowires are synthesized by CVD of zinc acetate at 1300 °C. Overcoming the problems of ZnO nanowire field emitters, which in general possess high turn on fields and low current densities, the core-shell nanowires exhibit excellent field emission performance with low turn on field of 2.75 V/µm and high current density of 1 mA/cm2. Chapter 8 presents a brief summary of the important results and future perspectives of the work reported in the thesis.
197

3D integration of single electron transistors in the Back-End-Of-Line of 28 nm CMOS technology for the development of ultra-low power sensors / Intégration 3D de dispositifs SET dans le Back-End-Of-Line en technologies CMOS 28 nm pour le développement de capteurs ultra basse consommation

Ayadi, Yosri January 2016 (has links)
La forte demande et le besoin d’intégration hétérogène de nouvelles fonctionnalités dans les systèmes mobiles et autonomes, tels que les mémoires, capteurs, et interfaces de communication doit prendre en compte les problématiques d’hétérogénéité, de consommation d’énergie et de dissipation de chaleur. Les systèmes mobiles intelligents sont déjà dotés de plusieurs composants de type capteur comme les accéléromètres, les thermomètres et les détecteurs infrarouge. Cependant, jusqu’à aujourd’hui l’intégration de capteurs chimiques dans des systèmes compacts sur puce reste limitée pour des raisons de consommation d’énergie et dissipation de chaleur principalement. La technologie actuelle et fiable des capteurs de gaz, les résistors à base d’oxyde métallique et les MOSFETs (Metal Oxide Semiconductor- Field Effect Transistors) catalytiques sont opérés à de hautes températures de 200–500 °C et 140–200 °C, respectivement. Les transistors à effet de champ à grille suspendu (SG-FETs pour Suspended Gate-Field Effect Transistors) offrent l’avantage d’être sensibles aux molécules gazeuses adsorbées aussi bien par chemisorption que par physisorption, et sont opérés à température ambiante ou légèrement au-dessus. Cependant l’intégration de ce type de composant est problématique due au besoin d’implémenter une grille suspendue et l’élargissement de la largeur du canal pour compenser la détérioration de la transconductance due à la faible capacité à travers le gap d’air. Les transistors à double grilles sont d’un grand intérêt pour les applications de détection de gaz, car une des deux grilles est fonctionnalisée et permet de coupler capacitivement au canal les charges induites par l’adsorption des molécules gazeuses cibles, et l’autre grille est utilisée pour le contrôle du point d’opération du transistor sans avoir besoin d’une structure suspendue. Les transistors monoélectroniques (les SETs pour Single Electron Transistors) présentent une solution très prometteuse grâce à leur faible puissance liée à leur principe de fonctionnement basé sur le transport d’un nombre réduit d’électrons et leur faible niveau de courant. Le travail présenté dans cette thèse fut donc concentré sur la démonstration de l’intégration 3D monolithique de SETs sur un substrat de technologie CMOS (Complementary Metal Oxide Semiconductor) pour la réalisation de la fonction capteurs de gaz très sensible et ultra basse consommation d’énergie. L’approche proposée consiste à l’intégration de SETs métalliques à double grilles dans l’unité de fabrication finale BEOL (Back-End-Of-Line) d’une technologie CMOS à l’aide du procédé nanodamascene. Le système sur puce profitera de la très élevée sensibilité à la charge électrique du transistor monoélectronique, ainsi que le traitement de signal et des données à haute vitesse en utilisant une technologie de pointe CMOS disponible. Les MOSFETs issus de la technologie FD-SOI (Fully Depleted-Silicon On Insulator) sont une solution très attractive à cause de leur pouvoir d’amplification du signal quand ils sont opérés dans le régime sous-le-seuil. Ces dispositifs permettent une très haute densité d’intégration due à leurs dimensions nanométriques et sont une technologie bien mature et modélisée. Ce travail se concentre sur le développement d’un procédé de fonctionnalisation d’un MOSFET FD-SOI comme démonstration du concept du capteur de gaz à base de transistor à double grilles. La sonde Kelvin a été la technique privilégiée pour la caractérisation des matériaux sensibles par le biais de mesure de la variation du travail de sortie induite par l’adsorption de molécules de gaz. Dans ce travail, une technique de caractérisation des matériaux sensibles alternative basée sur la mesure de la charge de surface est discutée. Pour augmenter la surface spécifique de l’électrode sensible, un nouveau concept de texturation de surface est présenté. Le procédé est basé sur le dépôt de réseaux de nanotubes de carbone multi-parois par pulvérisation d’une suspension de ces nanotubes. Les réseaux déposés servent de «squelettes» pour le matériau sensible. L’objectif principal de cette thèse de doctorat peut être divisé en 4 parties : (1) la modélisation et simulation de la réponse d’un capteur de gaz à base de SET à double grilles ou d’un MOSFET FD-SOI, et l’estimation de la sensibilité ainsi que la puissance consommée; (2) la caractérisation de la sensibilité du Pt comme couche sensible pour la détection du H[indice inférieur 2] par la technique de mesure de charge de surface, et le développement du procédé de texturation de surface de la grille fonctionnalisée avec les réseaux de nanotubes de carbone; (3) le développement et l’optimisation du procédé de fabrication des SETs à double grilles dans l’entité BEOL d’un substrat CMOS; et (4) la fonctionnalisation d’un MOSFET FD-SOI avec du Pt pour réaliser la fonction de capteur de H[indice inférieur 2]. / Abstract : The need of integration of new functionalities on mobile and autonomous electronic systems has to take into account all the problematic of heterogeneity together with energy consumption and thermal dissipation. In this context, all the sensing or memory components added to the CMOS (Complementary Metal Oxide Semiconductor) processing units have to respect drastic supply energy requirements. Smart mobile systems already incorporate a large number of embedded sensing components such as accelerometers, temperature sensors and infrared detectors. However, up to now, chemical sensors have not been fully integrated in compact systems on chips. Integration of gas sensors is limited since most used and reliable gas sensors, semiconducting metal oxide resistors and catalytic metal oxide semiconductor- field effect transistors (MOSFETs), are generally operated at high temperatures, 200–500 °C and 140–200° C, respectively. The suspended gate-field effect transistor (SG-FET)-based gas sensors offer advantages of detecting chemisorbed, as well as physisorbed gas molecules and to operate at room temperature or slightly above it. However they present integration limitations due to the implementation of a suspended gate electrode and augmented channel width in order to overcome poor transconductance due to the very low capacitance across the airgap. Double gate-transistors are of great interest for FET-based gas sensing since one functionalized gate would be dedicated for capacitively coupling of gas induced charges and the other one is used to bias the transistor, without need of airgap structure. This work discusses the integration of double gate-transistors with CMOS devices for highly sensitive and ultra-low power gas sensing applications. The use of single electron transistors (SETs) is of great interest for gas sensing applications because of their key properties, which are its ultra-high charge sensitivity and the ultra-low power consumption and dissipation, inherent to the fundamental of their operation based on the transport of a reduced number of charges. Therefore, the work presented in this thesis is focused on the proof of concept of 3D monolithic integration of SETs on CMOS technology for high sensitivity and ultra-low power gas sensing functionality. The proposed approach is to integrate metallic double gate-single electron transistors (DG-SETs) in the Back-End-Of-Line (BEOL) of CMOS circuits (within the CMOS interconnect layers) using the nanodamascene process. We take advantage of the hyper sensitivity of the SET to electric charges as well from CMOS circuits for high-speed signal processing. Fully depleted-silicon on insulator (FD-SOI) MOSFETs are very attractive devices for gas sensing due to their amplification capability when operated in the sub-threshold regime which is the strongest asset of these devices with respect to the FET-based gas sensor technology. In addition these devices are of a high interest in terms of integration density due to their small size. Moreover FD-SOI FETs is a mature and well-modelled technology. We focus on the functionalization of the front gate of a FD-SOI MOSFET as a demonstration of the DGtransistor- based gas sensor. Kelvin probe has been the privileged technique for the investigation of FET-based gas sensors’ sensitive material via measuring the work function variation induced by gas species adsorption. In this work an alternative technique to investigate gas sensitivity of materials suitable for implementation in DG-FET-based gas sensors, based on measurement of the surface charge induced by gas species adsorption is discussed. In order to increase the specific surface of the sensing electrode, a novel concept of functionalized gate surface texturing suitable for FET-based gas sensors are presented. It is based on the spray coating of a multi-walled-carbon nanotubes (MW-CNTs) suspension to deposit a MW-CNT porous network as a conducting frame for the sensing material. The main objective of this Ph.D. thesis can be divided into 4 parts: (1) modelling and simulation of a DG-SET and a FD-SOI MOSFET-based gas sensor response, and estimation of the sensitivity as well as the power consumption; (2) investigation of Pt sensitivity to hydrogen by surface charge measurement technique and development of the sensing electrode surface texturing process with CNT networks; (3) development and optimization of the DG-SET integration process in the BEOL of a CMOS substrate, and (4) FD-SOI MOSFET functionalization with Pt for H[subscript 2] sensing.
198

Fils conducteurs nanostructurés (cuivre et composites nanotube de carbone - cuivre) pour application en champs magnétiques intenses / Copper and carbon nanotube-copper composite wires for high-field-magnet applications

Arnaud, Claire 03 November 2015 (has links)
Afin de produire des champs magnétiques intenses (100 T), les fils conducteurs utilisés dans les bobines pulsées doivent présenter une contrainte à la rupture élevée et une très faible résistivité électrique. Le LNCMI et l'équipe NNC du CIRIMAT explorent des solutions originales basées sur l'élaboration de fils de cuivre nanostructuré et de fils nanocomposites nanotube de carbone - cuivre (NTC-Cu) par la combinaison originale du spark plasma sintering (SPS) et de l'étirage à température ambiante. Des barreaux de cuivre ont été élaborés par SPS à partir de poudres commerciales micrométriques. La croissance cristalline est très faible et la taille des grains de cuivre est 10 fois plus petite que celle des précurseurs de fils classiques. Les barreaux ont été étirés, sans rupture, sous forme de fils de diamètre décroissant (jusqu'à 0,198 mm) et de plusieurs mètres de long. Les grains ultrafins de Cu sont fortement allongés dans la direction de l'étirage. Aucune macle n'a été observée. Tous nos fils de cuivre présentent une résistance à la rupture en traction (à 293K et 77K) supérieure à celle des fils préparés à partir d'un précurseur de cuivre OFHC classique, ce qui pourrait résulter de la combinaison de l'écrouissage et des mécanismes d'Orowan. La résistivité électrique des fils est environ 12% plus élevée que celle des fils de cuivre OFHC. Pour les composites NTC-Cu, une adaptation de la méthode de mélange (fonctionnalisation des NTC biparois et à huit parois, mélange, cryogénisation, lyophilisation, réduction sous H2) a permis de produire des lots de poudre de 14 g en ayant une dispersion homogène des NTC. Du fait de la très faible teneur en carbone (= 1%), la préparation des barreaux puis des fils par les méthodes employées pour le cuivre pur est possible sans modification. La contrainte maximale à la rupture des fils NTC-Cu est supérieure (10-25%) à celle des fils de cuivre correspondants. Les NTC ont peu d'influence sur la microstructure du cuivre et leur probable alignement permet de bénéficier de leur grande résistance en traction. La résistivité est légèrement supérieure à celle des fils de cuivre correspondants (environ 12% à 77K). Le dernier chapitre est consacré à la préparation d'éprouvettes " os-de-chien " (Cu et NTC-Cu) directement par SPS " near-net-shape ". Nous avons mis en évidence l'influence de la nature du matériau dans lequel est usinée la matrice (graphite ou WC-Co) sur la microstructure, la microdureté et la contrainte à la rupture, pour un même cycle de frittage. / In order to produce high magnetic fields (100 T), the conducting wires used in pulsed coils must show both a high tensile strength and very low electrical resistivity. The LNCMI and NNC team of CIRIMAT explore creative solutions based on the development of nanostructured copper wires and carbon nanotube - copper (CNT-Cu) nanocomposite wires by the original combination of spark plasma sintering (SPS) and room-temperature wire-drawing (WD). Copper cylinders were prepared by SPS of micrometric commercial powders. Crystal growth is very low and the copper grains size is 10 times lower than for conventional wire precursors. The cylinders were wire-drawn, without breaking, into wires of decreasing diameter (down to 0.198 mm) and several meters long. The ultrafine Cu grains are highly elongated in the WD direction. No twinning was observed. Our copper wires show an ultimate tensile strength (UTS) at 293K and 77K higher than those for wires prepared from conventional OFHC copper, which could result from the combination of strain hardening and Orowan mechanisms. The electrical resistivity is about 12% higher than those for the OFHC wires. For the CNT-Cu nanocomposites, an adaptation of preparation route (functionalization of double-walled and eight-walled CNTs, mixing, freeze-drying, H2 reduction) resulted in the production of 14 g powder batches with a homogeneous dispersion of the CNTs. Due to the very low carbon content (= 1%), the preparation of the cylinders and wires by the methods used for pure copper is possible without modification. The UTS of the CNT-Cu wirers is 10-25% higher than for the corresponding copper wires. The CNTs have little influence on the Cu microstructure and their probable alignment allows one to benefit from their high tensile strength. The electrical resistivity is only moderately higher than for the corresponding copper wires (about 12% at 77K). The last chapter was devoted to the preparation of "dog-bone" Cu and CNT-Cu test samples by "near-net-shape" SPS. We have brought to the fore the influence of the nature of the die (graphite or WC-Co) on the microstructure, microhardness and tensile strength, for the same sintering cycle.
199

Charge Transport In Conducting Polymers, Polymer-Carbon Nanotube Composites And Devices

Sangeeth, Suchand C S January 2012 (has links) (PDF)
The Thesis reports charge transport studies on conducting polymers, polymer carbon nanotube composites and organic semiconductor devices. Conducting and semiconducting polymers consisting of π-conjugated chains have attracted considerable attention as they combine the optoelectronic properties of semiconductors with mechanical properties and processing advantages of plastics. The chemical/electrochemical/photodoping of these semiconducting polymers can tune the Fermi levels and conductivity in a controlled way, and hence the properties of devices can be easily tailored to suit in several applications. Carbon nanotube (CNT) is another another novel promising material for electronic/optoelectronic applications. Lately there has been a great interest in developing composites of polymer and CNTs to utilize the advantages of both CNTs and polymers. The inclusion of CNTs in polymers improves the mechanical, electrical and thermal properties since the aspect ratio (ratio of length to diameter) is very large, as well its density is rather low. The Thesis consists of 6 chapters. First chapter is a brief introduction of general and transport properties of conducting polymers and polymer-carbon nanotube composites. In Chapter 2, the sample preparation and experimental techniques used in this work are discussed. The charge transport in poly(3,4-ethylenedioxythiophene)-poly(styrenesulfonate) (PEDOT-PSS) is presented in Chapter 3. Chapter 4 focuses on the transport measurements in the polymer-CNT composite samples. Chapter 5 elaborates the ac and dc characterization of organic field-effect transistors (OFETs). And chapter 6 presents the conclusion and future directions of the work that has been presented in the Thesis. Chapter 1: In the scientific and technological revolution of the last few years, the study of high performance materials has been steadily increasing including the study of carbon-based materials. Conducting polymers have special properties that are interesting for this new technology. The charge transport in conjugated polymers is important to optimize the performance of devices. The discovery of CNTs with exceptional thermal, mechanical, optical, electrical and structural properties has facilitated the synthesis of new type of nanocomposites with very interesting properties. Nanocomposites represent a guest-host matrix consisting of easily processible functionalized conjugated polymer as host, incorporating CNTs as fillers with versatile electronic and magnetic properties, which provide a wide range of technological applications. To optimize their electrical properties it is essential to understand the charge transport mechanism in detail. Chapter 2: The multi-wall carbon nanotubes (MWNTs) grown by thermal chemical vapor deposition (CVD) are mixed with a 1:1 mixture of 98% H2SO4 and 70% HNO3 to produce sulfonic acid functionalized multi-wall carbon nanotubes (s-MWNTs). The s-MWNTs are dispersed in a solution of Nafion by ultrasonication and then cast on a glass substrate and slowly dried by moderate heating to obtain the composite films. Polyaniline (PANI)-MWNT composites were obtained by carrying out the chemical synthesis of nanofibrilar PANI in the presence of CNTs. This water dispersible PANIMWNT composite contains well segregated MWNTs partially coated by nanofibrilar PANI. The ac and dc charge transport measurements suggest hopping transport in these materials. OFETs are fabricated with pentacene, poly(2,5-bis(3-tetradecylthiophen-2-yl)thieno[3,2-b]thiophene)(PBTTT) and poly(3-hexylthiophene) (P3HT) as active materials. A novel technique is used to characterize the acphotoresponse of these OFETs. Chapter 3: Charge transport studies on PEDOT-PSS have been carried out and found that it correlates with the morphology. The dc conductivity of PEDOT–PSS shows enhanced delocalization of the carriers upon the addition of dimethyl sulfoxide (DMSO) and this is attributed to the extended chain conformation. PEDOT-PSS is known to form a phase-segregated material comprising highly conducting PEDOT grains that are surrounded by a sea of weakly ionic-conducting PSS and a wide variation in the charge transport properties of PEDOT-PSS films is attributed to the degree of phasesegregation of the excess insulating polyanion. The magnetotransport and temperature dependent ac transport parameters across different conducting grades of PEDOT-PSS processed with DMSO were compared. Depending on the subtle alterations in morphology, the transport at low temperatures is shown to vary from the hopping regime (Baytron P) to critical regime of the metal-insulator transition (Baytron PH510) There is a significant positive magnetoresistance (MR) for P–films, but this is considerably less in case of PH510-film. From the low temperature ac conductance it is found that the onset frequency for PH510 is nearly temperature independent, whereas in P type it is strongly temperature dependent, again showing the superior transport in PH510. The presence of ‘shorter network connections’ together with a very weak temperature dependence down to ~ 5 K, suggest that the limitation on transport in PH510 arises from the connectivity within the PEDOT-rich grain rather than transport via the PSS barriers. Chapter 4: DC and AC charge transport properties of Nafion s-MWNT and PANI-MWNT composites are studied. Such a detailed investigation is required to optimize the correlation among morphology and transport properties in these composites towards applications in field-effect transistors, antistatic coating, electromagnetic shielding, etc. The conductivity in Nafion s-MWNT shows a percolative transport with percolation threshold pc = 0.42 whereas such a sharp percolation is absent in PANI-MWNT composite since the conduction via PANI matrix smears out the onset of rapid increase in conductivity. Three-dimensional variable range hopping (VRH) transport is observed in Nafion s-MWNT composites. The positive and negative MR data on 10 wt. % sample are analyzed by taking into account forward interference mechanism (negative MR) and wave-function shrinkage (positive MR), and the carrier scattering is observed to be in the weak limit. The electric-field dependence, measured to high fields, follows the predictions of hopping transport in high electric-field regime. The ac conductivity in 1 wt. % sample follows a power law: ( )  A s , and s decreases with increasing temperature as expected in the correlated barrier hopping (CBH) model. In general, Mott’s VRH transport is observed in PANI-MWNT samples. It is found that the MWNTs are sparingly adhered with PANI coatings, and this facilitates inter-tube hopping at low temperatures. The negative MR of MWNT-PANI composites suggest that the electronic transport at low temperatures is dominated by MWNT network. AC impedance measurements at low temperatures with different MWNT loading show that ac conductivity become temperature independent as the MWNT content increases. The onset frequency for the increase in conductivity is observed to be strongly dependent on the MWNT weight percentage, and the ac conductivity can be scaled onto a master curve given by  ( )  0[1 k( 0 )s ]. Chapter 5: Organic field-effect transistors (OFETs) based on small molecules and polymers have attracted considerable attention due to their unique advantages, such as low cost of fabrication, ease of processing and mechanical flexibility. Impedance characterization of these devices can identify the circuit elements present in addition to the source-drain (SD) channel, and the bottlenecks in charge transport can be identified. The charge carrier trapping at various interfaces and in the semiconductor can be estimated from the dc and ac impedance measurements under illumination. The equivalent circuit parameters for a pentacene OFET are determined from low frequency impedance measurements in the dark as well as under light illumination. The charge accumulation at organic semiconductor–metal interface and dielectric semiconductor interface is monitored from the response to light as an additional parameter to find out the contributions arising from photovoltaic and photoconductive effects. The shift in threshold voltage is due to the accumulation of photogenerated carriers under SD electrodes and at dielectric–semiconductor interface, and also this dominates the carrier transport. Similar charge trapping is observed in an OFET with PBTTT as the active material. This novel method can be used to differentiate the photophysical phenomena occurring in the bulk from that at the metal-semiconductor interface for the polymer. Chapter 6: The conclusions from the various works presented in the thesis are coherently summarized in this chapter. Thoughts for future directions are also summed up.
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Low Temperature Charge Transport And Magnetic Properties Of MWNTs/MWNT-Polystyrene Composites

Bhatia, Ravi 12 1900 (has links) (PDF)
Carbon nanotubes (CNTs) have been recognized as potential candidates for mainstream device fabrication and technologies. CNTs have become a topic of interest worldwide due to their unique mechanical and electrical properties. In addition, CNTs possess high aspect ratio and low density that make them an important material for various technological applications. The field of carbon nanotube devices is rapidly evolving and attempts have been made to use CNTs in the fabrication of devices like field emitters, gas sensors, flow meters, batteries, CNT-field effect transistors etc. These molecular nanostructures are proposed to be an efficient hydrogen storage material. CNT cylindrical membranes are reported to be used as filters for the elimination of multiple components of heavy hydrocarbons from petroleum and for the filtration of bacterial contaminants of size less than 25 nm from water. Recently, CNT bundles have been proposed to be a good material for low-temperature sensing. CNTs have also been considered as promising filler materials due to extraordinary characteristics mentioned above. Fabrication of nanocomposites using CNTs as reinforcing material has completely renewed the research interest in polymer composites. The conductive and absorptive properties of insulating polymer doped with conducting filler are sensitive to the exposure to gas vapors and hence they can be used in monitoring various gases. The application of fiibre reinforced polymer composites in aeronautic industry are well known due to their high mechanical strength and light weight. Also, the conductive composite materials can be used for electromagnetic shielding. Desired properties in CNT-composites can be attained by adding small amount of CNTs in comparison to traditional filler materials. Due to high aspect ratio and low density of CNTs, percolation threshold in CNT-polymer composites can be achieved at 0.1 vol % as compared to ~16 vol. % in case of carbon particles. The research work ׽0.1 vol. %, as compared to reported in this thesis includes the preparation of multiwall carbon nanotube (MWNTs) and MWNT-polystyrene composites, experimental investigations on low temperature charge transport, and magnetic properties in these systems. This thesis contains 7 chapters. Chapter 1 provides an overview of CNTs and CNT-polymer composites. This chapter briefly describes the methods for synthesizing CNTs and fabricating CNT-polymer composites, charge transport mechanisms in CNTs and composites, and their magnetic properties as well. Chapter 2 deals with the concise introduction of various structural characterization tools and experimental techniques employed in the present work. An adequate knowledge of the strengths and limitations of experimental equipment can help in gathering necessary information about the sample, which helps in studying and interpreting its physical properties correctly. Chapter 3 describes the synthesis of MWNTs and their use as filler material for the fabrication of composites with polystyrene (PS). The characterization results of as-prepared MWNT and composites show that MWNTs possess high aspect ratio (~4000), and are well dispersed in the composite samples (thickness ~50-70 µm). The composite samples are prepared by varying the MWNT concentration from 0.1 to 15 wt %. The as¬fabricated composites are electrically conductive and expected to display novel magnetic properties since MWNTs are embedded with iron (Fe) nanoparticles. Chapter 4 presents the study of charge transport properties of aligned and random MWNTs in the temperature range 300-1.4 K. The low temperature electrical conductivity follows the weak localization (WL) and electron-electron (e-e) interaction model in both samples. The dominance of WL and e-e interaction is further verified by magneto-conductance (MC) measurements in the perpendicular magnetic field up to 11 T at low temperatures. The MC data of these samples consists of both positive and negative contributions, which originates from WL (at lower fields and higher temperatures) and e-e interaction (at higher fields and lower temperatures). Chapter 5 contains the results of charge transport studies in MWNT-PS composite near the percolation threshold (~0.4 wt %) at low temperatures down to 1.4 K. Metallic-like transport behavior is observed in composite sample of 0.4 wt %, which is quite unusual. In general, the usual activated transport is observed for systems near the percolation threshold. The unusual weak temperature dependence of conductivity in MWNT-PS sample at percolation threshold is further verified from the negligible frequency dependence of conductivity, in the temperature range from 300 to 5 K. Chapter 6 accounts on the experimental results of magnetization studies of MWNTs and MWNT-PS composites. The observation of maxima in coercivity and squareness ratio at 1 wt % of Fe-MWNT in a polymer matrix show the dominance of dipolar interactions among the encapsulated Fe-nanorods within MWNTs. The hysteresis loop of 0.1 wt % sample shows anomalous narrowing at low temperatures, which is due to significant contribution from shape anisotropy of Fe-nanorods. Chapter 7 presents brief summary and future perspectives of the research work reported in the thesis.

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