• Refine Query
  • Source
  • Publication year
  • to
  • Language
  • 8
  • 5
  • 2
  • 2
  • Tagged with
  • 20
  • 20
  • 6
  • 6
  • 5
  • 5
  • 5
  • 4
  • 4
  • 4
  • 4
  • 4
  • 4
  • 4
  • 4
  • 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.
11

Condução protônica e efeito de bloqueio elétrico em cerâmicas de estrutura tipo perovskita dupla ordenada / Proton conduction and electrical blocking effect on ceramic materials with ordered perovskite structure

Francisco, Lucas Henrique 09 February 2018 (has links)
O desenvolvimento de novos materiais cerâmicos condutores de prótons é tecnologicamente importante devido às suas aplicações como eletrólitos em células a combustível de óxido sólido (SOFCs), dispositivos eletroquímicos fontes de energia limpa e renovável. Entre os desafios encontrados na aplicação nessas células de novos óxidos cerâmicos prótoncondutores está a alta resistividade de seus contornos de grão, que bloqueiam eletricamente a corrente de defeitos protônicos. Esse fato torna relevantes as pesquisas sobre a natureza desse fenômeno de bloqueio e sua relação com as características próton-condutivas do material. Nesta dissertação, investigamos as propriedades do sistema não estequiométrico Ba3Ca1,18Nb1,82O9-δ, juntamente com os compostos Ba3Ca1,18Nb1,52R0,3O9-δ (R = Y, Gd, Sm, Nd). Pós cristalinos dessas composições foram sintetizados via reação em estado sólido e utilizados na fabricação de cerâmicas. Os materiais foram caracterizados do ponto de vista estrutural, microestrutural, vibracional e elétrico, utilizando diversas técnicas físicas e correlacionado as características de cada composição às suas propriedades condutivas. Experimentos de difração de raios X e cálculos de fator de estrutura revelaram o aparecimento de ordenamento estrutural na estrutura perovskita de todos os sistemas sintetizados, sendo a intensidade de reflexões características utilizada como parâmetro de ordenamento. A microestrutura das cerâmicas foi otimizada em função do tempo de sinterização e as amostras finais obtidas apresentaram baixa porosidade. A caracterização vibracional das cerâmicas via espectroscopia Raman corrobora o resultado do ordenamento obtido via difração, além de indicar a presença ou preenchimento de vacâncias de oxigênio na rede cristalina dos materiais. Análises vibracionais também permitiram o estudo da acumulação de defeitos na borda das amostras cerâmicas e de sua estabilidade química, sendo tais diretamente correlacionadas à dopagem feita no material. O estudo de propriedades elétricas por espectroscopia de impedância aliado a modelagens por circuitos equivalentes permitiu separar propriedades elétricas de grão e contorno de grão. O efeito de bloqueio elétrico dos contornos pôde ser observado nas cerâmicas estudadas e está correlacionado à condutividade do interior dos grãos, sendo tais resultados interpretados à luz do modelo de cargas espaciais. / The development of novel proton conducting ceramic materials is technologically important due to their application as electrolytes in solid oxide fuel cells (SOFC), electrochemical devices that constitute clean and renewable energy sources. Among the challenges faced when applying new oxide materials to fuel cells is the high resistivity of grain boundaries, which causes an electrical blocking effect of proton transport. This issue stimulates research on the nature of the blocking phenomenon and its relation to proton-conducting properties of the materials. In the present study, we investigate physical properties of the non-stoichiometric system Ba3Ca1,18Nb1,82O9-δ together with the compounds Ba3Ca1,18Nb1,52R0,3O9-δ (R = Y, Nd, Sm, Gd). Crystalline powders of all the chemical compositions were synthetized by a solidstate reaction and used to prepare ceramic samples. The materials were characterized in terms of their structural, microstructural, vibrational and electrical properties by the usage of various physical techniques, correlating characteristics of each composition to its proton-conduction properties. X-ray diffraction experiments combined with structure factor calculations revealed the presence of perovskite structural ordering in all the compounds, and the intensity of characteristic reflections was used as ordering parameter. Ceramic microstructure was optimized with respect to sintering time and the final samples achieved low porosity. Vibrational characterization by Raman spectroscopy supported the ordering result obtained by diffraction and indicated the presence or filling of oxygen vacancies in the materials crystal structures. Vibrational analysis also allowed the study of defect accumulation near the ceramic samples edges and their chemical stability, which are directly related to material doping. Electrical studies by impedance spectroscopy together with equivalent circuit modeling allowed the separation of grain and grain boundary electrical properties. Blocking effect by the boundaries was observed on the considered samples and is correlated to conductivity on grain bulk. Blocking results are interpreted in the framework of a space charge model.
12

Development of polymer electrolyte membranes for fuel cells to be operated at high temperature and low humidity

Zhou, Zhen 09 April 2007 (has links)
Polymer electrolyte membrane fuel cells (PEMFCs) have been looked as potential alternative energy conversion devices to conventional energy conversion systems such as combustion engines. Proton conducting membranes (PEMs) are one critical component of PEMFCs. The development of novel electrolyte membranes with dense structure, good mechanical flexibility, and high proton conductivity, but with little or no dependence on humidity at temperatures above 100¡ãC remains an important challenge to the realization of practical PEM fuel cells. In this thesis, to solve the technical difficulties existing in current high temperature PEM systems based on phosphoric acid and imidazole, a new type of proton conducting species 1H-1,2,3-triazole has been explored, and proved to have high proton conductivity and also enough electrochemical stability for fuel cell applications. In further experiments, effective methods have been developed to synthesize triazole derivatives and polymers. The properties of the synthesized polymers have studied and reported in this thesis. Preliminary computational simulations have also been performed to study the proton conducting mechanism to provide intrinsic information of the proton conducting process in 1H-1,2,3-triazole. In the final part, research works on other proton conducting species including H3PO4 and other heterocycles have been reported.
13

Nouvelles membranes à squelette haute performance pour les piles à combustible PEMFC / New membranes based on high performance polymers for proton exchange membrane fuel cells PEMFC

Danyliv, Olesia 23 June 2015 (has links)
La thèse est orientée à la production d'une membrane proton conductrice pour la pile à combustible à membrane proton électrolyte (PEMFC) comme un but principal. L'originalité et le challenge de l'élaboration de la membrane consistent en procédure multi-étape : commencer avec la synthèse de l'unité simple – un monomère ionique, continuer avec la polymérisation et l'estimation générale de performance en échelle de laboratoire de polymère ; et finir avec la production des matériaux en échelle industrielle et tester en conditions réelles. Toutes les étapes, sauf la dernière, sont étudiées en détail. Premièrement, beaucoup d'attention est portée à la description du protocole de production et purification de monomères ioniques. C'est à cause de la complexité des interactions ioniques dans un système ‘produit-solvant' et dû à l'exigence principale pour la haute pureté du monomère que la synthèse et traitement attentifs des monomères doivent être faits. En total, trois nouveaux monomères, portants les chaines acides perfluorosulfoniques, sont proposés. Ensuite, plusieurs réactions de polymérisation avec les différents monomères non-ioniques commerciaux sont décrites. Deux familles différentes des membranes proton conductrices sont décrites : poly(arylene ether)s (PAEs) statistiques et poly(arylene ether sulfone)s statistiques et en bloc. Elles sont synthétisées en séries de CEI différentes pour pouvoir suivre l'impact du groupe ionique sur les propriétés des matériaux. De plus, la nouvelle structure d'ionomère est proposée, où le copolymère à bloc contient le bloc hydrophile, synthétisé de deux monomères, portants les groupes perfluorosulfoniques (PFSA). Ça permet d'approcher au maximum les groupes latéraux superacides le long de la chaîne, ce qui, le plus probablement, contribue vers la meilleur organisation t interaction entre les sites ioniques. Pour la caractérisation suivante des nouveaux polymères ils sont coulés en membranes par la méthode de coulée-évaporation de ses solutions en dimethylacétamide (DMAc). Influence de la température du processus est décrite brièvement. Les membranes de différentes séries sont comparées entre eux-mêmes et à Nafion comme le matériau de référence. C'est connu que Nafion acquiert sa haute performance dû à : i) présence du groupe latéral superacide PFSA et ii) organisation des chaînes de polymère aux domaines bien séparés de conducteurs de protons (hydrophiles) et stables mécaniquement (hydrophobes). Par contre, la production de ce matériau contient les procédures dangereuses et chères de manipulation avec les gases fluorés, car cet ionomère contient une chaîne de base de Teflon. De plus, la température de transition de squelette perfluorée est plus basse que la température de fonctionnement de ionomère dans PEMFC. Les nouveaux ionomères sont ensuite caractérisés pour les propriétés thermo-mécaniques, stabilité, conductivité, morphologie. Ils montrent : i) hautes températures de transitions, ce qui permet l'utilisation de ces polymères aux conditions de la fonctionnement de PEMFC ; ii) le phénomène de la séparation de phases, ce qui propose les matériaux d'avoir la morphologie avec les domaines bien définis pour la conduction des protons, iii) la structuration avec une organisation importante, ce qui est rare d'apercevoir pour les matériaux aromatiques ; iv) haute conductivité protonique même à l'humidité réduite pour plusieurs séries des polymères proposées. Par conséquent, les matériaux montrent la performance prometteuse, ce qui doit être vérifiée aux conditions réelles de la pile à combustible. De plus, ce travail est innovant par la procédure de production des ionomères, c'est pourquoi plus des différentes séries des polymères sont prévues à être synthètisées à partir des monomères ioniques proposés ici. La variation des monomères ioniques peut être élargie aussi par changement de PFSA groupes aux perfluorosulfonimides. / The current work is directed to production of a proton conducting membrane for a proton electrolyte membrane fuel cell (PEMFC) as a main goal. The originality and the challenge of the membrane elaboration lie in the multi-step procedure: starting with the synthesis of a simple unit – an ionic monomer, continuing with polymerization and overall estimation of the polymer performance at laboratory scale, and ending with production of the required material of industrial quantity and testing in real conditions. All the steps, except the last one, are explicitly studied. Firstly, much attention in the dissertation is paid to description of a protocol for production and purification of the ionic monomers. It is due to complexity of ionic interactions in a system ‘product-solvent' and due to the main requirement of high purity for a monomer that attentive synthesis and treatment of the monomers must be provided. In total three new monomers, bearing perfluorosulfonic acid chains, are reported. Then, a number of polymerization reactions with different commercial non-ionic monomers are proposed. Two main families of proton conducting ionomers are described: random poly(arylene ether)s (PAEs) and poly(arylene ether sulfone)s (PAESs), both random and block-copolymers. They are synthesized in series of different IEC in order to follow the impact of the ionic group to the properties of the material. Additionally, a new structure of the ionomer is proposed, where the block-copolymer contains a hydrophilic block, synthesized from two monomers, bearing perfluorosulfonic acid (PFSA) groups. It allows maximally approximating the superacid lateral groups along the polymer chain that, most probably, contributes to better organization and interaction between the ionic sites. For further characterization of the novel polymers, they are cast to membranes by casting-evaporation method from their solutions in dimethylacetamide (DMAc). The influence of production temperature is described briefly. The membranes of different series are compared between each other and to Nafion as a reference material. It is known that Nafion acquires its high performance due to: i) presence of superacid PFSA lateral groups, and ii) organization of polymer chains into well-separated proton-conductive (hydrophilic) and mechanically stable (hydrophobic) domains. However, production of this material comprises dangerous and expensive procedures of manipulation with fluorinated gases, since this ionomer contains a Teflon-type backbone. Moreover, transition temperature of the perfluorinated main chain is lower, than the required temperature of the ionomer functioning in a PEMFC. The novel ionomers are further characterized in terms of thermo-mechanical properties, stability, conductivity, bulk morphology. They exhibit: i) high transition temperatures, which allows utilization of these polymers at conditions of a PEMFC functioning; ii) phase separation phenomenon, which suggests the materials to have morphology with distinct domains for proton conduction, iii) highly organized structuring, which is rare to clearly evidence on aromatic materials; iv) high proton conductivity for several polymer series, which over-perform Nafion even at reduced humidity. Based on these results, some of the synthesized materials are considered to be promising in a PEMFC, but further study in real conditions must be provided. Additionally, the current work is pioneering in the way of production of the ionomers, therefore, more different series of polymers are previewed to be synthesized out of the ionic monomers, proposed here. Variety of the ionic monomers may be enlarged as well by changing the PFSA groups to perfluorosulfonimide ones or by searching for other fluorinated commercial materials that might be modified into monomers with two functional groups for polycondensation. Thus, the main objectives, set for the current work, are fulfilled.
14

Condução protônica e efeito de bloqueio elétrico em cerâmicas de estrutura tipo perovskita dupla ordenada / Proton conduction and electrical blocking effect on ceramic materials with ordered perovskite structure

Lucas Henrique Francisco 09 February 2018 (has links)
O desenvolvimento de novos materiais cerâmicos condutores de prótons é tecnologicamente importante devido às suas aplicações como eletrólitos em células a combustível de óxido sólido (SOFCs), dispositivos eletroquímicos fontes de energia limpa e renovável. Entre os desafios encontrados na aplicação nessas células de novos óxidos cerâmicos prótoncondutores está a alta resistividade de seus contornos de grão, que bloqueiam eletricamente a corrente de defeitos protônicos. Esse fato torna relevantes as pesquisas sobre a natureza desse fenômeno de bloqueio e sua relação com as características próton-condutivas do material. Nesta dissertação, investigamos as propriedades do sistema não estequiométrico Ba3Ca1,18Nb1,82O9-δ, juntamente com os compostos Ba3Ca1,18Nb1,52R0,3O9-δ (R = Y, Gd, Sm, Nd). Pós cristalinos dessas composições foram sintetizados via reação em estado sólido e utilizados na fabricação de cerâmicas. Os materiais foram caracterizados do ponto de vista estrutural, microestrutural, vibracional e elétrico, utilizando diversas técnicas físicas e correlacionado as características de cada composição às suas propriedades condutivas. Experimentos de difração de raios X e cálculos de fator de estrutura revelaram o aparecimento de ordenamento estrutural na estrutura perovskita de todos os sistemas sintetizados, sendo a intensidade de reflexões características utilizada como parâmetro de ordenamento. A microestrutura das cerâmicas foi otimizada em função do tempo de sinterização e as amostras finais obtidas apresentaram baixa porosidade. A caracterização vibracional das cerâmicas via espectroscopia Raman corrobora o resultado do ordenamento obtido via difração, além de indicar a presença ou preenchimento de vacâncias de oxigênio na rede cristalina dos materiais. Análises vibracionais também permitiram o estudo da acumulação de defeitos na borda das amostras cerâmicas e de sua estabilidade química, sendo tais diretamente correlacionadas à dopagem feita no material. O estudo de propriedades elétricas por espectroscopia de impedância aliado a modelagens por circuitos equivalentes permitiu separar propriedades elétricas de grão e contorno de grão. O efeito de bloqueio elétrico dos contornos pôde ser observado nas cerâmicas estudadas e está correlacionado à condutividade do interior dos grãos, sendo tais resultados interpretados à luz do modelo de cargas espaciais. / The development of novel proton conducting ceramic materials is technologically important due to their application as electrolytes in solid oxide fuel cells (SOFC), electrochemical devices that constitute clean and renewable energy sources. Among the challenges faced when applying new oxide materials to fuel cells is the high resistivity of grain boundaries, which causes an electrical blocking effect of proton transport. This issue stimulates research on the nature of the blocking phenomenon and its relation to proton-conducting properties of the materials. In the present study, we investigate physical properties of the non-stoichiometric system Ba3Ca1,18Nb1,82O9-δ together with the compounds Ba3Ca1,18Nb1,52R0,3O9-δ (R = Y, Nd, Sm, Gd). Crystalline powders of all the chemical compositions were synthetized by a solidstate reaction and used to prepare ceramic samples. The materials were characterized in terms of their structural, microstructural, vibrational and electrical properties by the usage of various physical techniques, correlating characteristics of each composition to its proton-conduction properties. X-ray diffraction experiments combined with structure factor calculations revealed the presence of perovskite structural ordering in all the compounds, and the intensity of characteristic reflections was used as ordering parameter. Ceramic microstructure was optimized with respect to sintering time and the final samples achieved low porosity. Vibrational characterization by Raman spectroscopy supported the ordering result obtained by diffraction and indicated the presence or filling of oxygen vacancies in the materials crystal structures. Vibrational analysis also allowed the study of defect accumulation near the ceramic samples edges and their chemical stability, which are directly related to material doping. Electrical studies by impedance spectroscopy together with equivalent circuit modeling allowed the separation of grain and grain boundary electrical properties. Blocking effect by the boundaries was observed on the considered samples and is correlated to conductivity on grain bulk. Blocking results are interpreted in the framework of a space charge model.
15

Studies on the Dimensional Extension of Halogen-Bridged Transition-Metal Chain: Nanotube and Three-Dimensional Network / ハロゲン架橋遷移金属鎖の次元拡張に関する研究:ナノチューブと三次元ネットワーク

Liang, Hao 25 September 2023 (has links)
京都大学 / 新制・課程博士 / 博士(理学) / 甲第24872号 / 理博第4982号 / 新制||理||1711(附属図書館) / 京都大学大学院理学研究科化学専攻 / (主査)教授 北川 宏, 教授 有賀 哲也, 教授 堀毛 悟史 / 学位規則第4条第1項該当 / Doctor of Science / Kyoto University / DGAM
16

Développement et optimisation de matériaux d’électrodes et d’électrolytes, pour cellules PCFC / Development and optimization of electrode materials and electrolytes for PCFC cells

Pers, Paul 13 November 2015 (has links)
Ce travail de thèse s'inscrit dans le cadre du développement des piles à combustible à céramique conductrice protonique (PCFC) anode support, opérant dans le domaine de température 400 – 600 °C. Une attention particulière a été portée sur la diminution des températures d'élaboration des composants constituants les piles. Les stratégies mises en œuvre pour l'élaboration des anodes et des couches minces électrolytiques à basse température ont été la nano-structuration et l'ajout d'additifs aidant au frittage. La réalisation de couche mince électrolytique a fait l'objet d‘un développement par pulvérisation de suspensions. Le choix des matériaux et leur optimisation ont permis de minimiser les résistances spécifiques surfaciques (ASR). Les tests en pile de cellules élémentaires PCFC ont montré des résultats prometteurs concurrentiels aux autres types de pile à combustible de l'ordre de 400mW/cm². / The aim of present work was to develop PCFC materials and fuel cells working in 400-600°C. The work deals with the optimization of materials and elaboration processes with the aim of decreasing the sintering temperature. In order to achieve high performances, nanostructured and architecture electrodes and optimized electrolytes have been investigated. Efficient anode support PCFCs were fabricated using wet powder spraying whiten simply method easily suitable on order to scaling-up. The maximum power densities obtained in this work are among, one of the best reported for PCFC
17

Processamento e caracterização elétrica de perovisquitas hexagonais de ba5nb4o15 dopadas com titânio e zircônio

Unti, Luiz Fernando Kultz 31 January 2017 (has links)
Submitted by Eunice Novais (enovais@uepg.br) on 2017-09-01T17:51:26Z No. of bitstreams: 2 license_rdf: 811 bytes, checksum: e39d27027a6cc9cb039ad269a5db8e34 (MD5) Luiz Fernando K Unti.pdf: 6181881 bytes, checksum: b0280e86919fc3c265d97d1ffba8200e (MD5) / Made available in DSpace on 2017-09-01T17:51:26Z (GMT). No. of bitstreams: 2 license_rdf: 811 bytes, checksum: e39d27027a6cc9cb039ad269a5db8e34 (MD5) Luiz Fernando K Unti.pdf: 6181881 bytes, checksum: b0280e86919fc3c265d97d1ffba8200e (MD5) Previous issue date: 2017-01-31 / Coordenação de Aperfeiçoamento de Pessoal de Nível Superior / Dentre os materiais mais comuns utilizados para a construção de eletrólitos e eletrodos das células a combustível de óxido sólido (CaCOS) estão os óxidos com estrutura semelhante à perovisquita; estes apresentam características desejáveis para esta aplicação, como boa condutividade elétrica. Diversos são os estudos nesta área atualmente, onde um dos enfoques é o desenvolvimento de materiais com condutividade protônica para melhorar a performance destes condutores. O presente trabalho avaliou a viabilidade do composto Ba5Nb4O15 (BNO) como possível candidato na produção de elementos de CaCOS. Este composto possui uma estrutura de perovisquita hexagonal, e estudos recentes apontam que é largamente utilizado em ressoadores dielétricos e há indícios que este tipo de estrutura pode apresentar condutividade protônica. Nesse trabalho foi avaliada a síntese da fase BNO através de um método alternativo à reação no estado sólido, baseada no método Pechini modificado, usando para isto precursores no formato de óxido. Como há diversas rotas diferentes de processamento para esta fase, comparou-se a sinterabilidade dos pós obtidos nas sínteses através da densificação, após serem conformados e sinterizados em duas temperaturas: 1400 e 1450ºC. Também se estudou a influência da adição de dopantes de menor valência (titânio e zircônio) na estrutura e nas propriedades elétricas da fase pura. Foi possível obter a fase BNO em todas as sínteses, embora após a primeira calcinação houvesse diferentes fases na amostra obtida pelo método Pechini; estas fases secundárias desapareceram após a sinterização. Atingiu-se maior densificação ao submeter os pós sintetizados à moagem, previamente à conformação, onde se atingiu porosidades aparentes menores que 5%. As dopagens promoveram o refino do grão, mas não foram eficientes no aumento da condutividade do composto. Contudo, as amostras sinterizadas em 1450ºC apresentaram maior condutividade em atmosfera úmida (H2O) do que em água pesada (D2O), o que pode ser um indício da existência de condutividade protônica nesta estrutura. / Among the common materials used to produce solid oxide fuel cell’s (SOFC’s) electrolytes and electrodes areoxides with perovskite structures; they show desirable characteristics for this application, like good levels of ionic conduction. Nowadays, there are many different studies on this field, where developing new proton conduction materials to improve SOFC’s performance is one of them. Present work evaluated the viability of compound Ba5Nb4O15 (BNO) as a candidate to produce SOFC’s elements. This compound show a hexagonal perovskite structure and recent papers point this kind of structure is currently used can show some indications of proton conduction. At present study, it was evaluated BNO synthesis through an alternate method to solid-state reaction, based on Pechini method and using different oxides as precursors. Since there are many different processing routes to obtain this phase, it was compared sinterability of synthesized powders after pressing and sintering at two temperatures: 1400 and 1450ºC. The poisoning effect of titanium and zirconium on structure and electric properties was also studied. BNO phase was successful obtained in all synthesis, although non-stoichiometry phases were present on Pechini sample after first calcination; after sintering, these phases were no longer present though. A higher densification was obtained after milling synthesized powder previously to pressing: a bulk porosity smaller than 5% was achieved. Doping produce grain refinement, but it was not efficient improving electrical conductivity. However, sintered samples at 1450ºC had shown higher conductivity on humid atmosphere (H2O) than presented on heavy water atmosphere (D2O). This could be an indication of proton conductionin this structure. Keywords: proton conduction, hexagonal perovskites, Pechini method, solid oxide fuel cells.
18

Computational exploration of water adsorption and proton conduction in porous materials / Non renseigné

Mendonça Mileo, Paulo Graziane 21 December 2018 (has links)
L’objectif de la thèse a été de comprendre la dynamique protonique et l'adsorption d'eau dans de nouveaux matériaux poreux identifiés expérimentalement comme des candidats prometteurs pour des applications dans le domaine de la conduction protonique et du transfert de chaleur par adsorption. Dans ce contexte, des simulations à l’échelle électronique (Théorie de la fonctionnelle de la Densité) et atomique (Monte Carlo et Dynamique Moléculaire classique) ont permis (i) d’élucider les mécanismes de conduction protonique assistées par l’eau de deux matériaux hybrides de type MOFs, MIL-163(Zr) et KAUST-7', et d'un phosphate de titane, TiIVTiIV(HPO4)4 à l’origine de leurs performances exceptionnelles et (ii) d’interpréter les comportements d’adsorption de l’eau d’une série de matériaux hybrides CUK-1(Me), MOF-801(Zr) and MIL-100(Fe) qui peuvent être modulées par la nature de leur centre métallique, la création de défauts et l’incorporation de sites de coordination insaturés. Cette connaissance fondamentale devrait permettre de voir émerger de façon plus efficace des matériaux pour les deux applications visées. / The objective of this PhD thesis was to gain insight into the proton dynamics and water adsorption mechanisms in novel porous materials that have been identified experimentally as promising candidates for low temperature proton conduction and adsorption-based heat reallocation-related applications. This was achieved by combining advanced computational tools at the electronic (Density Functional Theory) and atomic (force field_based Monte Carlo and Molecular Dynamics) levels to (i) reveal the water-assisted proton migration pathway through the pores of the hybrid metal organic frameworks MIL-163(Zr) and KAUST-7’and the inorganic phosphonate TiIVTiIV(HPO4)4 materials at the origin of their outstanding proton conduction performances and (ii) explain the water adsorption behaviors of a series of metal organic frameworks CUK-1(Me), MOF-801(Zr) and MIL-100(Fe) that can be tuned by changing the nature of the metal center, creating defects and incorporating coordinatively unsaturated sites. Such a fundamental understanding is expected to pave the way towards a more efficient development of materials for the two explored applications.
19

Self-Assembled Coordination Cages for Catalysis and Proton Conduction

Samanta, Dipak January 2014 (has links) (PDF)
Biological systems construct varieties of self-assembled architectures with incredible elegance and precession utilizing proteins as subunits to accomplish widespread functions. Inspired by natural systems, construction of artificial model systems with such sophistication and delicacy has become an intriguing field of research over the last two decades using so-called self-assembly process. Judiciously selected complementary building units encoded with specific chemical and structural information can be self-assembled into pre-programmed abiological architectures in a manner similar to biological self-assembly. In this regard, kinetically labile metal-ligand coordination has become an efficient and powerful protocol for the construction of highly intricate structures with specific topology and functionality due to its simple design principle, high bond enthalpy, and predictable directionality. Two-component self-assembly is very widely used methodology and easy to monitor. Recently, multi-component self-assembly has come up as an alternative and effective pathway to achieve complex architectures connecting more than two components in a single step. However, formation of selective single product from multicomponents is entropically unfavorable. Only a very few 3D architectures have been known, that are obtained from a mixture of ditopic and tri- or tetratopic donors with metal acceptors with or without employing templates. Development of template-free multicomponent architectures is still in its infancy. Strong tendency of Pd(II)/Pt(II) to attain square-planar geometry around the metal center and kinetically labile nature of Pd(II)/Pd(II)-N(pyridine) bonds made them chemists’ favourite to engineer desired supramolecular coordination architectures with structural resemblance to Platonic or Archimedean solids by employing symmetrical pyridyl donors due to their predictable directionality. In case of poly-imidazole donors, free rotation of C-N bond connecting imidazole and phenyl ring allows various dispositions of the donating nitrogen with respect to the aromatic backbone, and therefore, the structural topology of the architectures, made of poly-imidazole ligands becomes much more interesting as compared to symmetrical Platonic or Archimedean solids. The physico-chemical properties of self-assembled coordination cages depend on the structures of the complexes. Presence of large internal cavity surrounded by aromatic core, provides an excellent environment for the encapsulation of varieties of guest molecule or as nano-reactors for different organic transformations. Structural investigation in terms of packing interactions, solvent molecules, intermolecular channels can sometimes determine the property of such self-assembled materials as well. Presence of acidic water as well as H-bonded 3D-networks of water molecules in molecular pockets make them potential material for proton conduction. In addition, metal-ligand coordination offers opportunity to introduce new functionality through pre-synthetic modification of the building constituents to influence the property of the supramolecular systems. Incorporation of unsaturated ethynyl functionality attached to the heavy transition metal is expected to exhibit efficient luminescence due to the facile metal to ligand charge transfer (MLCT). Hence, the final assemblies can be employed as chemosensors for electron-deficient nitroaromatics, which are the chemical signature of many of the commercially available explosives. The present investigation is focused on design and construction of discrete, nanoscopic coordination cages with unusual structural topology employing mainly imidazole-based donors with Pd(II)/Pt(II) acceptors and their applications in catalysis, chemosensing, and proton conduction. CHAPTER 1 of the thesis provides a general introduction to self-assembly focusing on the importance and advantages of metal-ligand directional bonding approach towards the construction of supramolecular architectures with various structural topologies. This chapter also includes a brief review on the applications of such coordination cages in various fields especially as ‘molecular flask’ for the observation of unique chemical phenomena and unusual reactions. Part A of CHAPTER 2 describes the synthesis of a new hollow Pd6 water soluble cage [{(tmen)Pd}6(timb)4](NO3)12 (1) via two-component self-assembly of a triimidazole donor and 90° Pd(II) acceptor [tmen = N,N,N’,N’-tetramethylethylenediamine, timb = 1,3,5-tris(1-imidazolyl)benzene]. The assembly was successfully crystallized with a hydrophilic dianionic benzoquinone derivative (formed in situ by the decomposition of DDQ) as [{(tmen)Pd}6(timb)4](NO3)10()2(H2O)18 (3), and a hydrophobic sterically demanding aromatic aldehyde as [{(tmen)Pd}6(timb)4](NO3)12{()4a}2(H2O)27 (5a) [where 2H2 = 2,3-dichloro-5,6-dihydroxycyclohexa-2,5diene-1,4-dione, 4a = 1-pyrenecarboxaldehyde,  = exohedral and  = endohedral] to confirm the hydrophobic nature of the cavity. Experiments were carried out to show that the hydrophobic confined nanospace of the cage (1) catalyses the Knoevenagel condensation of a series of different aromatic monoaldehydes with active methylene compounds in ‘green’ aqueous medium. The Knoevenagel condensation reaction is basically a dehydration reaction because water is a by-product. So the presence of water should, in principle, promote the backward reaction as per Le Chatelier’s principle. In general, these reactions with organic substrates are not performed in water. However, difficulty has been overcome using hydrophobic cavity of the cage. It has also been established that the cavity of the cage also enhances the rate of Diels-Alder reaction of 9-hydroxymethylanthracene with N-phenylmaleimide/N-cyclohexylmaleimide. Figure 1. Catalytic Knoevenagel condensation and Diels-Alder reaction using hydrophobic cavity of the cage (1) in aqueous medium. Part B of CHAPTER 2 reports unique three-component self-assembly incorporating both tri- and tetra-topic donors. Until now, a very few 3D-architectures have been known that are obtained from self-assembly of ditopic and tri- or tetratopic donors with metal acceptors. Scheme 1. Three-component self-assembly of a Pd7 cage (1) from cis-blocked Pd(II) 90° acceptor (M), tri-imidazole (timb) and tetra-imidazole (tim) donors. Self-assembled multicomponent discrete architecture composed of both tri- and tetra-topic donors is yet to be reported due to difficulty in prediction of the final structure from the mixture of ligands having multiple donor sites. The first example of self-sorted Pd7 molecular boat [{(tmen)Pd}7(timb)2(tim)2](NO3)14(H2O)20 (1) [tmen = N,N,N’,N’-tetramethylethylenediamine, timb = 1,3,5-tris(1-imidazolyl)-benzene, tim = 1,2,4,5-tetrakis(1-imidazolyl)benzene] was synthesized via three-component self-assembly of cis-(tmen)Pd(NO3)2, tetra- (tim) and tri-topic donors (timb) in a 7:2:2 ratio. The cavity of this cage was also utilized as a nanoreactor for catalytic Knoevenagel condensations of a series of aromatic aldehydes with 1,3-dimethylbarbituric acid (e) and Meldrum’s acid (f) in aqueous media. CHAPTER 3 presents the results of an investigation on how simple variation of length and coordination mode of linear donors can self-discriminate into markedly different complex architectures, from Pd8 molecular swing [{(tmen)Pd}8(tim)2(bpy)4](NO3)16 (1) or [{(tmen)Pd}8(tim)2(stt)5](NO3)6 (2) to Pd6 molecular boat [{(tmen)Pd}6(tim)2(bpe/dpe/pin/dpb)2](NO3)12, (3/4/5/6). Also by enhancing denticity [bidentate to tridentate (ptp)] as well as introducing asymmetry, they self-sort into Pd7 molecular tent [{(tmen)Pd}7(tim)2(ptp)2](NO3)14 (7) by employing it in a self-assembly of cis-(tmen)Pd(NO3)2 and tetraimidazole (tim) donor [where tmen = N,N,N’,N’-tetramethylethylenediamine, bpy = 4,4’-bipyridyl, stt = sodium terephthalate, bpe = trans-1,2-bis(4-pyridyl)ethylene, dpe = 1,2-di(pyridin-4-yl)ethane, pin = N-(pyridin-4-yl)isonicotinamide, dpb = 1,4-di(pyridin-4-yl)benzene, ptp = 6'-(pyridin-4-yl)-3,4':2',4''-terpyridine, and tim = 1,2,4,5-tetrakis(1- imidazolyl)benzene]. In these cases, control of the geometrical principles and stereo-electronic preferences of the building units allowed the formation of such intricate architectures. Some of these assemblies represent first examples of such types of structures, and their formation would not be anticipated by taking into account only the geometry of the donor and acceptor building units. In addition to their direct structural confirmation using single crystal X-ray diffraction analysis, propensity of the assemblies (1 and 3) to form inclusion complexes with large guest like C60 in solution was also demonstrated by fluorescence quenching experiment. The high KSV values for both the assemblies 1 (1.0 × 10-5 M-1) and 2 (1.6 × 10-6 M-1) with C60 indicated the propensity of these assemblies to form complexes with C60 in solution. Furthermore, inspection of crystal packing of other five complexes (2 and 4 - 7) revealed the presence of water molecules H-bonded with NO3– (O-H···O=N) and 3D H-bonded networks of water in the intermolecular pockets. Interestingly, the present complexes (2 and 4 - 7) show high conductivity across low-humidity range at ambient temperature and achieve a conductivity of ~10-3 Scm-1 at 75% relative humidity and 296 K. These supra-molecular architectures represent a new generation of discrete materials that display high proton conductivity under ambient conditions with activation energy comparable to that of Nafion. Scheme 2. Exclusive formation of Pd8 molecular swings (1 and 2), Pd6 molecular boats (3-6), and Pd7 molecular tent (7) via self-sorting. CHAPTER 4 presents self-selection by synergistic effect of morphological information and coordination ability of the ligands through specific coordination interactional algorithms within dynamic supramolecular systems involving a tetratopic Pd(II) acceptor and three different pyridine- and imidazole-based donors (La - Lc) [La = 1,3-bis((E)-2-(pyridin-3-yl)vinyl)benzene, Lb = 1,3-di(1H-imidazol-1-yl)benzene, and Lc = tris(4-(1H-imidazol-1-yl)phenyl)amine]. Three different cages, ‘paddle wheel’ cluster Pd2(La)4(NO3)4 (2a), molecular barrel Pd3(Lb)6(NO3)6 (2b) and molecular sphere Pd6(Lc)8(NO3)12 (2c) were first synthesized via two-component self-assembly of a tetratopic Pd(II) acceptor (1) and individual pyridine- and imidazole-based donors (La - Lc). When all the four components were allowed to interact in a complex reaction mixture, only one out of three cages was isolated. The inherent dynamic nature of the kinetically labile coordination bond allows constitutional adaptation through component exchange in the competition experiment involving multiple constituents to self-organize into specific combination and thereby, achieve the thermodynamically most stable assembly. The preferential binding affinity towards a particular partner was also established by transforming a non-preferred cage to a preferred cage by the interaction with the appropriate ligand and thus, this represents the first examples of two-step cage-to-cage transformation through constitutional evolution of Figure 2. Cage-to-cage transformation from non-preferred cage to preferred cage upon treatment with appropriate ligand; and Nyquist plots of the complexes (2b and 2c) under 98% RH condition and ambient temparature. dynamic systems induced by both coordination ability and geometry of the ligand. Moreover, computational study further supported the fact that coordination interaction of imidazole moiety to Pd(II) is enthalpically more preferred compared to pyridine which drives the selection process. In addition, analysis of crystal packing of both the complexes (2b and 2c) indicated the presence of strong H-bonds between NO3- and water molecules; as well as H-bonded 3D-networks of water. Interestingly, both the complexes exhibit promising proton conductivity (10-5 to ca. 10-3 S cm-1) at ambient temperature under relative humidity of ~98% with low activation energy. CHAPTER 5 covers design and synthesis of new organometallic building block 1,3,5-tris(4-trans-Pt(PEt3)2I(ethynyl)phenyl)benzene (1) incorporating Pt-ethynyl functionality and [2 + 3] self-assembly of its nitrate analogue 1,3,5-tris(4-trans-Pt(PEt3)2(ONO2)(ethynyl)phenyl)benzene (2) with “clip” type bidentate donors (L1 – L3) separately afforded three trigonal prismatic architectures (3a – 3c), respectively (Scheme 3), Scheme 3. Schematic presentation of three different donors (L1 – L3) and a new planar tritopic acceptor (2) and their [3 + 2] self-assembly into trigonal prismatic architectures (3a - 3c). [L1 = N1,N3-di(pyridin-3-yl)isophthalamide; L2 = 1,3-bis((E)-2-(pyridin-3-yl)vinyl)benzene; L3 = 1,3-bis(pyridin-3-ylethynyl)benzene]. All these prisms were characterized and their shapes/sizes are predicted through geometry optimization employing molecular mechanics universal force field (MMUFF) simulation. The extended -conjugation including the presence of Pt-ethynyl functionality make them electron rich as well as luminescent in nature. As expected, cages 3b and 3c exhibit fluorescent quenching in solution upon addition of picric acid [PA], which is a common constituent of many explosives. Interestingly, the non-responsive nature of fluorescent intensity towards other electron-deficient nitro-aromatic explosives (NAEs) makes them promising selective sensors for PA with a detection limit deep down to ppb. Complexes 3b – c represent the first examples of molecular metallocages as selective sensors for picric acid. Furthermore, solid-state quenching of fluorescent intensity of the thin film of 3b upon exposure to saturated vapor of picric acid draws special attention for infield application.
20

Syntheses Structural Transformations, Magnetism, Ferroelectricity and Proton Conduction of Metal Organic Frameworks (MOF) Compounds

Bhattacharya, Saurav January 2015 (has links) (PDF)
The past few decades have witnessed an almost exponential increase in interest in the field of metal organic frameworks (MOFs), which can be evidenced from the large number of scientific articles being published routinely in this area. The MOFs are crystalline hybrid materials built via the judicial use of inorganic metal ions and organic linkers, thereby bridging the gap between purely inorganic and organic materials. The structural versatility and the potential tunability of the MOFs imparts unique physicochemical and thermomechanical properties, which have rendered them immensely useful in the branches of chemistry, material science, physics, biology, nanotechnology, medicine as well as environmental engineering. The MOFs have been shown to be promising as materials for gas storage and separation, sensors, ferroelectric and non-linear optical materials, magnetism, catalysis, drug delivery etc and researchers have been devising strategies to utilize the MOFs to tackle a number of global challenges of the twenty-first century. A survey of the literature reveals that the linear organic linkers, 1,4- benzenedicarboxylic acid (BDC) and 4,4’-biphenyldicarboxylic acid (BPDC), have been the organic linkers of choice for the construction of stable, porous and multifunctional MOFs. The aim of this thesis has been to monitor the effect that the presence of a functional group in between the benzene rings of the BPDC would have on the overall structures and the properties of the MOFs. Thus, as part of the investigations, the preparation of the MOF compounds using 4,4’-sulfonyldibenzoic acid (SDBA) and 4,4’- azodibenzoic acid (ABA) have been accomplished. Along with the conventional hydrothermal and solvothermal synthetic techniques, the liquid-liquid biphasic reaction method was also utilized for the synthesis of some of the compounds. The structures of the compounds were ascertained from single crystal X-ray diffraction technique. Proton conductivity studies were performed on Mn based porous MOFs using AC impedance spectroscopy. The ferroelectric behavior in a Co based porous MOF was established using dielectric and polarization vs electric field measurements. The labile nature of the lattice solvent molecules was established utilizing single crystal X-ray diffraction studies and water sorption experiments. In addition, the site selective substitution in a homometallic MOF and the subsequent conversion to a mixed-metal spinel oxide upon thermal decomposition, have also been studied. Chapter 1 of the thesis is a brief overview of the metal organic framework compounds and summarizes the various important structures that have been reported in literature and the interesting properties that they exhibit. In chapter 2, the proton conductivity behavior, solvent mediated single crystal to single crystal (SCSC) and related structural transformations in a family of Mn and Co based porous MOFs with SDBA have been presented. Also presented are the results of the site selective substitution of Mn by Co in a homometallic Mn based MOF and it’s subsequent decomposition to CoMn2O4 spinel oxide nanoparticles. In chapter 3, the syntheses, structures and the magnetic properties of the pentanuclear Mn5 based MOF compounds with SDBA have been presented. The role of the time and the temperature in the formation of the compounds has also been presented. In chapter 4, the dehydration/rehydration mediated switchable room temperature ferroelectric behavior, the single crystal to single crystal solvent exchange studies and selective gas sorption behavior in an anionic Co based MOF with SDBA has been discussed. In chapter 5, the use of the liquid-liquid biphasic synthetic route in the formation of Zn and Cd based MOFs with ABA has been discussed. Structural transformations between the one dimensional Zn based compounds and the heterogeneous catalytic studies using the Cd based compounds have also been presented.

Page generated in 0.1043 seconds