115 resultados para nanoribbons


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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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O grafeno é a primeira estrutura bidimensional que se obteve experimentalmente. Sua rede cristalina é uma rede hexagonal, conhecida como "Favo de Mel", possui apenas um átomo de espessura. Cortes em folhas de grafeno, privilegiando determinada direção, geram as chamadas nanofitas de grafeno. Embora o grafeno se comporte como um metal, é sabido que as nanofitas podem apresentar comportamentos semicondutor, metálico ou semimetálico, dependendo da direção de corte e/ou largura da fita. No caso de nanofitas semicondutoras, a largura da banda proibida (band gap), entre outros fatores, depende da largura da nanofita. Neste trabalho adotou-se métodos de primeiros princípios como o DFT (Density Functional Theory), afim de se obter as características tais como curvas de dispersão para nanofitas. Neste trabalho, primeiramente, são apresentados diagramas de bandas de energia e curvas de densidade de estados para nanofitas de grafeno semicondutoras, de diferentes larguras, e na ausência de influências externas. Utilizou-se métodos de primeiros princípios para a obtenção destas curvas e o método das funções de Green do Não Equilíbrio para o transporte eletrônico. Posteriormente foi investigado a influência da hidrogenização, temperatura e tensão mecânica sobre sistema, isso além, de se estudar o comportamento de transporte eletrônico com e sem influência destes fatores externos. Vale ressaltar que as nanofitas de grafeno apresentam possibilidades reais de aplicação em nanodispositivos eletrônicos, a exemplo de nanodiodos e nanotransistores. Por esse motivo, é importante se ter o entendimento de como os fatores externos alteram as propriedades de tal material, pois assim, espera-se que as propriedades de dispositivos eletrônicos também sejam influenciadas da mesma maneira que as nanofitas.

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Neste trabalho, investigamos os efeitos da funcionalização de grupos oxidativos sobre a estrutura de nanofitas de grafeno zigue-zague e também os efeitos de constrições, onde estes efeitos foram analisados por meio de transporte eletrônico via campo externo longitudinal. Nossos cálculos foram parametrizados pelo modelo semi-empírico de Huckel estendido-ETH, adotando-se o método das funções de Green de não equilíbrio- NEGF. As correntes foram calculadas via equação de Landauer que usa a função de transmissão da região espalhadora ao fluxo de elétrons com energia (E) vinda do eletrodo esquerdo. Por meio dessa abordagem, foi possível analisarmos o comportamento dos portadores de carga em cada um os dispositivos propostos, bem como, a natureza de tal comportamento. Verificaram-se nas curvas I(V) dois regimes de transporte: Ôhmico e NDR, verificando máximos de corrente e, também a tensão de limiar (VTh1

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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)

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Pós-graduação em Física - IGCE

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The application of one-dimensional (1D) V2O5 center dot nH(2)O nanostructures as pH sensing material was evaluated. 1D V2O5 center dot nH(2)O nanostructures were obtained by a hydrothermal method with systematic control of morphology forming different nanostructures: nanoribbons, nanowires and nanorods. Deposited onto Au-covered substrates, 1D V2O5 center dot nH(2)O nanostructures were employed as gate material in pH sensors based on separative extended gate FET as an alternative to provide FET isolation from the chemical environment. 1D V2O5 center dot nH(2)O nanostructures showed pH sensitivity around the expected theoretical value. Due to high pH sensing properties, flexibility and low cost, further applications of 1D V2O5 center dot nH(2)O nanostructures comprise enzyme FET-based biosensors using immobilized enzymes.

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We performed an ab initio investigation on the properties of rutile tin oxide (SnOx) nanowires. We computed the wire properties determining the equilibrium geometries, binding energies, and electronic band structures for several wire dimensions and surface facet configurations. The results allowed us to establish scaling laws for the structural properties, in terms of the nanowire perimeters. The results also showed that the surface states control most of the electronic properties of the nanowires. Oxygen incorporation in the nanowire surfaces passivated the surface-related electronic states, and the resulting quantum properties and scaling laws were fully consistent with electrons confined inside the nanowire. Additionally, oxygen incorporation in the wire surfaces generated an unbalanced concentration of spin up and down electrons, leading to magnetic states for the nanowires.

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The effects of edge covalent functionalization on the structural, electronic, and optical properties of elongated armchair graphene nanoflakes (AGNFs) are analyzed in detail for a wide range of terminations, within the framework of Hartree-Fock-based semiempirical methods. The chemical features of the functional groups, their distribution, and the resulting system symmetry are identified as the key factors that determine the modification of strutural and optoelectronic features. While the electronic gap is always reduced in the presence of substituents, functionalization-induced distortions contribute to the observed lowering by about 35-55% This effect is paired with a red shift of the first optical peak, corresponding to about 75% of the total optical gap reduction. Further, the functionalization pattern and the specific features of the edge-substituent bond are found to influence the strength and the character of the low-energy excitations. All of these effects are discussed for flakes of different widths, representing the three families of AGNFs.

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Graphene excellent properties make it a promising candidate for building future nanoelectronic devices. Nevertheless, the absence of an energy gap is an open problem for the transistor application. In this thesis, graphene nanoribbons and pattern-hydrogenated graphene, two alternatives for inducing an energy gap in graphene, are investigated by means of numerical simulations. A tight-binding NEGF code is developed for the simulation of GNR-FETs. To speed up the simulations, the non-parabolic effective mass model and the mode-space tight-binding method are developed. The code is used for simulation studies of both conventional and tunneling FETs. The simulations show the great potential of conventional narrow GNR-FETs, but highlight at the same time the leakage problems in the off-state due to various tunneling mechanisms. The leakage problems become more severe as the width of the devices is made larger, and thus the band gap smaller, resulting in a poor on/off current ratio. The tunneling FET architecture can partially solve these problems thanks to the improved subthreshold slope; however, it is also shown that edge roughness, unless well controlled, can have a detrimental effect in the off-state performance. In the second part of this thesis, pattern-hydrogenated graphene is simulated by means of a tight-binding model. A realistic model for patterned hydrogenation, including disorder, is developed. The model is validated by direct comparison of the momentum-energy resolved density of states with the experimental angle-resolved photoemission spectroscopy. The scaling of the energy gap and the localization length on the parameters defining the pattern geometry is also presented. The results suggest that a substantial transport gap can be attainable with experimentally achievable hydrogen concentration.

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From the perspective of a new-generation opto-electronic technology based on organic semiconductors, a major objective is to achieve a deep and detailed knowledge of the structure-property relationships, in order to optimize the electronic, optical, and charge transport properties by tuning the chemical-physical characteristics of the compounds. The purpose of this dissertation is to contribute to such understanding, through suitable theoretical and computational studies. Precisely, the structural, electronic, optical, and charge transport characteristics of several promising organic materials recently synthesized are investigated by means of an integrated approach encompassing quantum-chemical calculations, molecular dynamics and kinetic Monte Carlo simulations. Particular care is addressed to the rationalization of optical and charge transport properties in terms of both intra- and intermolecular features. Moreover, a considerable part of this project involves the development of a home-made set of procedures and parts of software code required to assist the modeling of charge transport properties in the framework of the non-adiabatic hopping mechanism applied to organic crystalline materials. As a first part of my investigations, I mainly discuss the optical, electronic, and structural properties of several core-extended rylene derivatives, which can be regarded to as model compounds for graphene nanoribbons. Two families have been studied, consisting in bay-linked perylene bisimide oligomers and N-annulated rylenes. Beside rylene derivatives, my studies also concerned electronic and spectroscopic properties of tetracene diimides, quinoidal oligothiophenes, and oxygen doped picene. As an example of device application, I studied the structural characteristics governing the efficiency of resistive molecular memories based on a derivative of benzoquinone. Finally, as a second part of my investigations, I concentrate on the charge transport properties of perylene bisimides derivatives. Precisely, a comprehensive study of the structural and thermal effects on the charge transport of several core-twisted chlorinated and fluoro-alkylated perylene bisimide n-type semiconductors is presented.

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Graphene, that is a monolayer of carbon atoms arranged in a honeycomb lattice, has been isolated only recently from graphite. This material shows very attractive physical properties, like superior carrier mobility, current carrying capability and thermal conductivity. In consideration of that, graphene has been the object of large investigation as a promising candidate to be used in nanometer-scale devices for electronic applications. In this work, graphene nanoribbons (GNRs), that are narrow strips of graphene, for which a band-gap is induced by the quantum confinement of carriers in the transverse direction, have been studied. As experimental GNR-FETs are still far from being ideal, mainly due to the large width and edge roughness, an accurate description of the physical phenomena occurring in these devices is required to have valuable predictions about the performance of these novel structures. A code has been developed to this purpose and used to investigate the performance of 1 to 15-nm wide GNR-FETs. Due to the importance of an accurate description of the quantum effects in the operation of graphene devices, a full-quantum transport model has been adopted: the electron dynamics has been described by a tight-binding (TB) Hamiltonian model and transport has been solved within the formalism of the non-equilibrium Green's functions (NEGF). Both ballistic and dissipative transport are considered. The inclusion of the electron-phonon interaction has been taken into account in the self-consistent Born approximation. In consideration of their different energy band-gap, narrow GNRs are expected to be suitable for logic applications, while wider ones could be promising candidates as channel material for radio-frequency applications.

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Im Rahmen dieser Arbeit wurden neuartige funktionale Nanographene synthetisiert und hinsichtlich ihrer strukturellen und elektronischen Eigenschaften charakterisiert. Basierend auf dem Strukturmotiv des Graphens konnten anellierte polyzyklische aromatische Kohlenwasserstoffe (PAKs) mit unterschiedlichen Seitenverhältnissen strukturdefiniert erhalten und gezielt in der Peripherie funktionalisiert werden. Basierend auf dem Synthesekonzept einer „Vorplanarisierung“ konnten Nanographen-Scheiben mit einem Durchmesser von bis zu 3 nm in hoher Reinheit erhalten werden. Durch die Entwicklung von Polyphenylen-Vorläufern mit einem gewinkelten Rückgrat konnten erstmals defektfreie und lösliche Nanographen-Streifen (GNRs) mit Breiten von 1,0 - 2,1 nm und Längen von über 40 nm synthetisiert werden.rnrnAm Hexa-peri-hexabenzocoronen (HBC) war es möglich, durch die Einführung kurzer linearer Alkylreste in der Peripherie den inter- und intrakolumnaren Abstand nach Selbstorganisation zu reduzieren. In Mischungen mit Perylentetracarboxydiimid (PDI) als Akzeptor konnte durch eine erhöhte Dichte und eine verbesserte Ladungsträgermobilität eine relative Steigerung der Effizienz von Donor-Akzeptor-Heteroübergangs-Solarzellen um 9 % erreicht werden. Eine kovalente Verknüpfung von HBC und PDI erlaubte hier die vollständige Kontrolle der supramolekularen Organisation, des Phasenverhaltens sowie des Abstandes zwischen Donor und Akzeptor.rnrnBasierend auf den im Rahmen dieser Arbeit entwickelten Synthesekonzepten, eröffnen sich nun zahlreiche Möglichkeiten zur Entwicklung weiterer Nanographene, die entsprechend der gewünschten Anwendung funktionalisiert werden können und ein besseres Verständnis der Eigenschaften graphenartiger Materialien erlauben werden.

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The common ground of this study is the development of novel synthetic strategies to extended one-, two- and three-dimensional aromate-rich systems for which a number of applications are envisaged. rnThe point of departure is the synthesis and characterization of highly symmetric macrocyclic PAHs (polycyclic aromatic hydrocarbons) for which various aspects of supramolecular chemistry will be investigated. The versatility of the Yamamoto macrocyclization will be demonstrated on the basis of a set of cyclic trimers that exhibit a rich supramolecular chemistry. 1,10-phenanthroline, triphenylene and ortho-terphenyl building blocks have been successfully assembled to the corresponding macrocycles following the newly developed synthetic route. Scanning-tunneling microscopy (STM) and two-dimensional wide-angle X-ray scattering (2D-WAXS) were used to study the two- and three-dimensional self-assembly, respectively.rnSecondly, the development of chemical approaches to highly shape-anisotropic graphene nanoribbons (GNRs) and related nanographene molecules shall be discussed. Aryl-aryl coupling was used for the bottom-up fabrication of dendronized monomers, polymers and model compounds. Subsequently, these structures were converted into the final graphene material using oxidative (Scholl-type) cyclodehydrogenation. The GNRs thus obtained are characterized by an unprecedented length and lateral extension. The relevance of structural tailoring in the field of well-defined graphene materials is discussed in detail as only the chemical approach provides full geometry control. rnLastly, novel pathways towards the synthesis of extended three-dimensional networks that are dominated by nitrogen-rich motifs will be presented. If porous, these materials hold a great potential in the fields of gas and energy storage as well as for applications in catalysis. Hence, poly(aminal) networks based on melamine as crosslinking unit were synthesized and characterized with respect to the applications mentioned above. As set of conjugated poly(azomethine) networks was investigated regarding their use as a novel class of organic semiconductors for photocatalytic water splitting. The network structures described in this chapter can also be subjected to a controlled pyrolysis yielding mesoporous, nitrogen-rich carbon materials that were evaluated as active component for supercapacitors.rn

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DNA-grafted supramolecular polymers (SPs) allow the programmed organization of DNA in a highly regular, one-dimensional array. Oligonucleotides are arranged along the edges of pyrene-based helical polymers. Addition of complementary oligonucleotides triggers the assembly of individual nanoribbons resulting in the development of extended supramolecular networks. Network formation is enabled by cooperative coaxial stacking interactions of terminal GC base pairs. The process is accompanied by structural changes in the pyrene polymer core that can be followed spectroscopically. Network formation is reversible, and disassembly into individual ribbons is realized either via thermal denaturation or by addition of a DNA separator strand.

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We report on the structural characterization of junctions between atomically well-defined graphene nanoribbons (GNRs) by means of low-temperature, noncontact scanning probe microscopy. We show that the combination of simultaneously acquired frequency shift and tunneling current maps with tight binding (TB) simulations allows a comprehensive characterization of the atomic connectivity in the GNR junctions. The proposed approach can be generally applied to the investigation of graphene nanomaterials and their interconnections and is thus expected to become an important tool in the development of graphene-based circuitry.