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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.
1

Giant Plasmonic Energy and Momentum Transfer on the Nanoscale

Durach, Maxim 16 October 2009 (has links)
We have developed a general theory of the plasmonic enhancement of many-body phenomena resulting in a closed expression for the surface plasmon-dressed Coulomb interaction. It is shown that this interaction has a resonant nature. We have also demonstrated that renormalized interaction is a long-ranged interaction whose intensity is considerably increased compared to bare Coulomb interaction over the entire region near the plasmonic nanostructure. We illustrate this theory by re-deriving the mirror charge potential near a metal sphere as well as the quasistatic potential behind the so-called perfect lens at the surface plasmon (SP) frequency. The dressed interaction for an important example of a metal–dielectric nanoshell is also explicitly calculated and analyzed. The renormalization and plasmonic enhancement of the Coulomb interaction is a universal effect, which affects a wide range of many-body phenomena in the vicinity of metal nanostructures: chemical reactions, scattering between charge carriers, exciton formation, Auger recombination, carrier multiplication, etc. We have described the nanoplasmonic-enhanced Förster resonant energy transfer (FRET) between quantum dots near a metal nanoshell. It is shown that this process is very efficient near high-aspect-ratio nanoshells. We have also obtained a general expression for the force exerted by an electromagnetic field on an extended polarizable object. This expression is applicable to a wide range of situations important for nanotechnology. Most importantly, this result is of fundamental importance for processes involving interaction of nanoplasmonic fields with metal electrons. Using the obtained expression for the force, we have described a giant surface-plasmoninduced drag-effect rectification (SPIDER), which exists under conditions of the extreme nanoplasmonic confinement. Under realistic conditions in nanowires, this giant SPIDER generates rectified THz potential differences up to 10 V and extremely strong electric fields up to 10^5-10^6 V/cm. It can serve as a powerful nanoscale source of THz radiation. The giant SPIDER opens up a new field of ultraintense THz nanooptics with wide potential applications in nanotechnology and nanoscience, including microelectronics, nanoplasmonics, and biomedicine. Additionally, the SPIDER is an ultrafast effect whose bandwidth for nanometric wires is 20 THz, which allows for detection of femtosecond pulses on the nanoscale.
2

Design and Numerical Modelling of Nanoplasmonic Structures at Near-Infrared for Telecom Applications

Ebadi, Seyed Morteza January 2022 (has links)
Industrial innovation is mostly driven by miniaturization. As a result of remarkable technological advancements in the fields of equipment, materials and production processes, transistor, the fundamental active component in conventional electronics, has shrunk in size. Semiconductor technology is unique in that all performance metrics are enhanced, while at the same time unit prices are reduced. Moore’s Law, which predicts that the number of components per chip will double every two years, was established in 1965, and the industry has been able to keep up with this prophetic prognosis since. Thermal management, on the other hand, has become a key limiting factor for current electronic circuits and is set to put a stop to Moore’s Law. Given the fact that complementary metal oxide semiconductor (CMOS) scaling is reaching fundamental limits, there are several new alternative processing devices and architectures that have been investigated for both traditional integrated circuit (IC) technologies and novel technologies, including new technologies aimed at contributing to advances in scaling progress and cost reductions in manufacturing operations in the coming decades. These factors will encourage the development of new information processing and memory systems, new technologies for integrating numerous features heterogeneously and new system architectural design layouts, among other things. Energy efficiency is advantageous from a sustainability perspective and for consumer electronics, for which fewer power-hungry components mean longer times between charges and smaller batteries. The creation of novel chip-scale tools that can aid in the transfer of information across optical frequencies and microscale photonics between nanoscale electronic devices is now a possibility. Bridging this technological gap may be achieved by plasmonics. The incorporation of plasmonic, photonic and electrical components on a single chip may lead to a number of innovative breakthroughs. Photonic integrated circuits (PICs) enable the realization of ultra-small, high-efficiency, ultra-responsive and CMOS-compatible devices that can be used in applications ranging from optical wireless communication systems (6G and beyond) and supercomputers to health and energy.   This thesis provides a platform from which to design nanoplasmonic devices while facilitating high-transmission and/or absorption efficiency, miniaturized size and the use of near-infrared (NIR) wavelengths for telecom applications. With a significant amount of Internet traffic transmitted optically, communication systems are further tightening the requirements for the development of new optical devices. Several new device structures based on the metal-insulator-metal (MIM) plasmonic waveguide are proposed and investigated using performance metrics. The transmission line theory (TLM) from microwave circuit theory and coupled mode theory (CMT) is studied and employed in the design process of the nanostructures, in particular to address the losses in plasmonic-based devices, which has been the major factor hampering their widespread usage in communication systems. By taking advantage of well-established microwave circuit theory (through new design that paves the way for mitigating these losses and enabling efficient transmission of power flow in the optical devices), we have suggested a number of high-transmission efficiency nanodevices that offer highly competitive performance compared with other platforms. As a result, a promising future for plasmonic technology, which would enable design and fabrication of multipurpose and multifunctional optical devices that are efficient in terms of losses, footprint and capability of integrating active devices, is anticipated. / Branschinnovation drivs främst av miniatyrisering. Som ett resultat av anmärkningsvärda tekniska framsteg inom områdena utrustning, material och produktionsprocesser kunde transistoren, den grundläggande aktiva komponenten i samtida elektronik, krympa i storlek. Halvledarteknik är unik genom att alla prestandamått förbättras, samtidigt som enhetspriserna sänks. Moores Lag, som förutspår att antalet komponenter per chip skulle fördubblas vartannat år, inrättades 1965, och branschen har kunnat hålla jämna steg med den profetiska prognosen sedan dess. Termisk hantering, å andra sidan, har blivit en viktig begränsande faktor för nuvarande elektroniska kretsar, och är inställd på att sätta stopp för Moores Lag. Med tanke på att CMOS-skalningen (Complementary Metal Oxide Semiconductor) når grundläggande gränser finns det flera nya alternativa bearbetningsanordningar och arkitekturer som har undersökts för både traditionell integrerad kretsteknik och ny teknik. Ny teknik som syftar till att bidra till framsteg i skalningen av framsteg och kostnadsminskningar i tillverkningsverksamheten under de kommande årtiondena. Dessa faktorer uppmuntrar utvecklingen av nya informationsbehandlings- och minnessystem, ny teknik för att integrera många funktioner heterogent och nya systemarkitekturdesignlayouter, bland annat. Energieffektivitet är fördelaktigt ur ett hållbarhetsperspektiv och för hemelektronik, där färre krafthungriga elektroniker innebär längre tid mellan laddningar och stimulerar för ett mindre energilagringssystem ombord. Skapandet av nya chip-scale verktyg som kan bidra till överföring av information över optiska frekvenser och mikroskala fotonik mellan elektroniska enheter i nanoskala är nu en möjlighet. Överbrygga denna tekniska klyfta kan uppnås av plasmonics. Införlivandet av plasmoniska, fotoniska och elektriska komponenter på ett enda chip kan leda till ett antal innovativa genombrott. Fotoniska integrerade kretsar (PIC-enheter) möjliggör förverkligande av ultrasmå, högeffektiva, ultraresponsiva och CMOS-kompatibla enheter som kan användas i applikationer som sträcker sig från optiska trådlösa kommunikationssystem (6G och därefter), superdatorer till hälso- och energiändamål. Denna avhandling ger en plattform för att designa nanoplasmoniska enheter samtidigt som den innehåller hög överförings- och eller absorptionseffektivitet, miniatyriserad storlek och vid önskade våglängder av nära infraröd (NIR) för telekomapplikationer. Med den betydande mängden Internettrafik som överförs optiskt skärper kommunikationssystemen ytterligare kraven för utveckling av nya optiska enheter. Flera nya enhetsstrukturer baserade på metall-isolator-metall (MIM) plasmonisk vågledare föreslås och numeriskt undersöks. Överföringslinjeteorin (TLM) från mikrovågskretsteori och kombinationslägesteori (CMT) studeras och används i nanostrukturerna. För att ta itu med de förluster i plasmonbaserade enheter som har varit den viktigaste parametern som hindrade deras utbredda användning i kommunikationssystem, genom att dra nytta av den väletablerade mikrovågskretsteorin (genom ny design som banar väg för att mildra förlusterna och möjliggöra effektiv överföring av kraftflödet i den optiska enheten).  Vi har framgångsrikt föreslagit ett antal nanodevices med hög överföringseffektivitet som erbjuder en mycket konkurrenskraftig prestanda jämfört med andra plattformar. Som ett resultat förväntar vi oss en lovande framtid för plasmonisk teknik som skulle möjliggöra design och tillverkning av mångsidiga och multifunktionella optiska enheter som är effektiva när det gäller förluster, fotavtryck och förmåga att integrera aktiva enheter. / <p>Vid tidpunkten för framläggandet av avhandlingen var följande delarbeten opublicerade: delarbete II inskickat, III, IV, V manuskript.</p><p>At the time of the licentiate defence the following papers were unpublished: paper II submitted, III, IV, V manuscript.</p>
3

Photo-thermal control of surface plasmon mode propagation at telecom wavelengths / Le contrôle photo-thermique de la propagation du mode plasmon de surface aux longueurs d'onde télécom

Kaya, Serkan 17 October 2016 (has links)
Les plasmons-polaritons de surface (PPS) font figure de plateforme polyvalente très promet- teuse pour le guidage des ondes électromagnétiques à l’échelle nanométrique. Dans ce contexte, le contrôle dynamique de la propagation PPS est d’une importance capitale. Le contrôle actif des dispositifs plasmoniques a souvent été réalisé jusqu’à présent par le biais d’un effet thermo-optique (TO). Toutefois dans la majorité des cas considérés, l’effet thermo-optique résulte d’une modification des propriétés d’un matériaux diélectrique en contact avec le métal supportant le mode plasmon. Ainsi, le rôle des propriétés thermo-optiques du métal lui-même a rarement été analysé aux fréquences télécom dans le cadre d’applications plasmoniques. L’objectif principal de cette thèse est donc d’analyser en détail l’impact des propriétés thermo- optiques des métaux sur différents modes PPS aux longueurs d’ondes télécom. En premier lieu, nous considérons la modulation photo-thermique d’un mode plasmon supporté par un film mince d’or se propageant à l’interface "or/air". Nous démontrons tout d’abord la modulation de la propagation des modes PPS induite par la dépendance des pertes ohmiques de l’or à la température du film mince. Le contrôle de la température du film est obtenu par un effet photo-thermique en régime continu modulé. Les mesures expérimentales de la pro- fondeur de modulation de l’intensité des modes PPS combinées à la simulation numérique de la distribution de température le long du film d’or nous permettent de remonter aux coefficients thermo-optiques de l’or aux fréquences télécoms. Dans un second temps, nous considérons le contrôle thermo-optique de modes plasmons dont le confinement spatial (et donc l’indice effectif) est supérieur à ceux des modes de films. Les modes considérés dans cette seconde étude sont connus sous le nom de "polymer- loaded surface plasmon waveguides (PLSPPWs)". Ces modes présentent un confinement latéral induit par l’indice de réfraction du ruban de polymère déposés sur le film métallique et un confinement vertical résultant de leur nature plasmonique. L’excitation photo-thermique de ces guides plasmoniques dans un régime nano-seconde nous permet de mettre en évidence la dynamique thermo-optique du métal aux temps courts (<1ns) et du polymère aux temps plus longs (<1µs). La même démarche appliquée à un micro-résonateur plasmonique en anneau révèle les temps caractéristiques de la dynamique de diffusion de la chaleur dans le polymère à l’échelle de quelques dizaines de nanomètres. Sur la base de ces expériences, nous suggérons un design de dispositifs plasmoniques thermo-optique dont la bande passante est de l’ordre du megahertz, un ordre de grandeur au-dessus des systèmes thermo-optiques traditionnels. Enfin, nous présentons la modulation photo-thermique de la propagation PPS le long de nanofils d’or fabriqués par lithographie électronique supportant des modes plasmons très confinés aux longueurs d’onde télécom. La transmission d’un signal télécom à 10 Gbit/s est tout d’abord démontrée afin d’établir sans ambiguïté la pertinence de tels guides d’ondes miniatures pour la transmission d’informations à très courtes échelles. Enfin, nous mettons en évidence la modulation photo-thermique de la propagation de tels modes. En particulier, nous investiguons l’influence sur la profondeur de modulation de la polarisation du faisceau pompe relativement à l’orientation des nanofils. Cet effet de polarisation s’explique par une absorption exaltée si la polarisation du faisceau pompe est orientée perpendiculairement à l’axe du nanofil. L’exaltation résulte de l’excitation d’un mode plasmon local selon l’axe transverse du nanofil. / Surface plasmon polaritons (SPPs) is the promising versatile platform proposed for guiding electromagnetic waves at nanoscale dimensions. In this context dynamic control of SPPs prop- agation is of paramount importance. Thermo-optical (TO) effect is considered as an efficient technique for performing active control of plasmonic devices. Among the thermo-optical based plasmonic devices demonstrated so far TO coefficient is dominantly provided by a dielectric material on top of the metal sustaining the SPP mode, however, the role of TO properties of the metal has been rarely investigated for plasmonic applications especially at the telecom frequency ranges. Therefore, the aim of this thesis is to investigate in detail the impact of thermo-optical properties of metals onto various SPP modes at telecom wavelengths.First, we report on photo-thermal modulation of thin film SPP mode traveling at gold/air interface excited at telecom wavelengths. We start by investigating the photo-thermally in- duced modulation of SPPs propagation mediated by the temperature dependent ohmic losses in the gold film. Then we extract the thermo-plasmonic coefficient of the SPP mode from the accurately measured SPPs signal depth of modulation by which we could compute the thermo-optical coefficients (TOCs) of gold at telecom wavelength. Lastly, we demonstrate a pulsed photo-thermal excitation of the SPPs in the nanosecond regime.Secondly, we investigate the thermo-optical dynamics of polymer loaded surface plasmon waveguide (PLSPPW) based devices photo-thermally excited in the nanosecond regime. First, we demonstrate thermo-absorption of PLSPPW modes mediated by the temperature-dependent ohmic losses of the metal and the thermally controlled field distribution of the plasmon mode within the metal. Next, we consider the thermo-optical response of a PLSPPW based racetrack shaped resonator coupled to a straight bus waveguide and evaluate the photo-thermal activation through heating and cooling times. We conclude that nanosecond excitation combined to high thermal diffusivity materials opens the way to high speed thermo-optical plasmonic devices.Finally, we report on the photo-thermal modulation of SPPs propagation along litho- graphically fabricated gold nanowires sustaining highly confined plasmonic mode at telecom wavelengths. First, we investigate telecommunication characterization of the nanowires by ap- plying high bit rate signal transmission, 10 Gbit/s, through fiber-to-fiber confocal detection setup. Next, we demonstrate and evaluate the photo-thermal modulation of SPPs propagation along the nanowires where we discuss qualitatively TO effects due to light-induced modula- tions on nanowires and show the impact of the incident beam polarization on the photo-thermal modulation.

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