Energy and interaction forces in classical two-dimensional crystals with inhomogeneous goarse-grained density

Detalhes bibliográficos
Autor(a) principal: PEREIRA, Paulo César do Nascimento
Data de Publicação: 2016
Tipo de documento: Dissertação
Idioma: eng
Título da fonte: Repositório Institucional da UFPE
Texto Completo: https://repositorio.ufpe.br/handle/123456789/24738
Resumo: In this M.Sc. thesis, we concentrate on classical two-dimensional crystals with soft pairwise interactions at low temperatures. Typically, the triangular lattice is the configuration which minimizes the interaction potential energy. Such energy is calculated through a lattice sum and we show some analytical approximations to it. We will be interested in cases where the coarse-grained density slightly depends on position. This can be caused by an external force on particles. Then the softness of interactions will determine how the coarse-grained density must vary. At equilibrium, the density gradient generates an equal and opposite force, resultant from interactions. In the limit of small gradients, the system has few defects and locally conserves the triangular lattice symmetry. Although the system’s configuration has a huge number of freedom degrees, only the position dependence of coarse-grained density is our relevant information at scales much greater than the nearest-neighbors’ distance. We then investigate the calculation of the resultant interaction force due to such density variations with position. A simple and intuitive, but not rigorous, way to obtain the Dynamical Density Functional Theory (DDFT) force is showed. Also, a microscopic approach giving the same result is proposed. In equilibrium, this force gives a minimization of the total free energy and it has been successful in many nonequilibrium systems. We show that this force fails in the case of long wavelength longitudinal waves, giving a smaller result for the sound speed. Also, in recent computer simulations, we obtained equilibrium configurations where the same correction in the force is needed. We show that such correction can be obtained by adding a correction term in the free energy, calculated as a functional of coarse-grained density.
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spelling PEREIRA, Paulo César do Nascimentohttp://lattes.cnpq.br/2084709462294618http://lattes.cnpq.br/1975993976921900APOLINÁRIO, Sergio Wlademir da Silva2018-06-04T21:35:05Z2018-06-04T21:35:05Z2016-04-13https://repositorio.ufpe.br/handle/123456789/24738In this M.Sc. thesis, we concentrate on classical two-dimensional crystals with soft pairwise interactions at low temperatures. Typically, the triangular lattice is the configuration which minimizes the interaction potential energy. Such energy is calculated through a lattice sum and we show some analytical approximations to it. We will be interested in cases where the coarse-grained density slightly depends on position. This can be caused by an external force on particles. Then the softness of interactions will determine how the coarse-grained density must vary. At equilibrium, the density gradient generates an equal and opposite force, resultant from interactions. In the limit of small gradients, the system has few defects and locally conserves the triangular lattice symmetry. Although the system’s configuration has a huge number of freedom degrees, only the position dependence of coarse-grained density is our relevant information at scales much greater than the nearest-neighbors’ distance. We then investigate the calculation of the resultant interaction force due to such density variations with position. A simple and intuitive, but not rigorous, way to obtain the Dynamical Density Functional Theory (DDFT) force is showed. Also, a microscopic approach giving the same result is proposed. In equilibrium, this force gives a minimization of the total free energy and it has been successful in many nonequilibrium systems. We show that this force fails in the case of long wavelength longitudinal waves, giving a smaller result for the sound speed. Also, in recent computer simulations, we obtained equilibrium configurations where the same correction in the force is needed. We show that such correction can be obtained by adding a correction term in the free energy, calculated as a functional of coarse-grained density.CNPQNesta tese de mestrado, nós nos concentramos em cristais clássicos bidimensionais com interações suaves entre pares e a baixas temperaturas. Tipicamente, a rede triangular é a configuração que minimiza a energia potencial de interação. Tal energia é calculada através de um somatório de rede e nós mostramos algumas aproximações analíticas para ela. Nós estaremos interessados nos casos onde a densidade coarse-grained (a densidade "olhada de longe", abordada como contínua) depende levemente da posição. Isto pode ser causado por uma força externa nas partículas e, então, a suavidade das interações determinará como a densidade coarsegrained deve variar. No equilíbrio, este gradiente de densidade gerará uma força igual e oposta, resultante das interações. No limite de pequenos gradientes, o sistema tem poucos defeitos e conserva localmente a simetria de rede triangular. Embora a configuração do sistema tenha um enorme número de graus de liberdade, apenas a dependência da densidade coarse-grained com a posição é nossa informação relevante em escalas muito maiores que a distância entre primeiros vizinhos. Portanto, nós investigamos o cálculo da força resultante de interação devido a tais variações da densidade com a posição. Uma forma simples e intutitiva, mas não rigorosa, de obter a força da Teoria Dinâmica do Funcional de Densidade é mostrada. Além disso, uma abordagem microscópica que fornece o mesmo resultado é proposta. Vemos que, no equilíbrio, esta força fornece a minimização da energia livre total e tem sido bem sucedida em vários sistemas de não-equilíbrio. Mostramos que esta força falha no caso das ondas longitudinais de longo comprimento de onda, fornecendo um resultado menor para a velocidade do som. Em recentes simulações computacionais, nós obtivemos configurações de equilíbrio onde a mesma correção na força é necessária. Nós mostramos que tal correção pode ser obtida adicionando um termo de correção na energia livre, calculada como um funcional da densidade coarse-grained.engUniversidade Federal de PernambucoPrograma de Pos Graduacao em FisicaUFPEBrasilAttribution-NonCommercial-NoDerivs 3.0 Brazilhttp://creativecommons.org/licenses/by-nc-nd/3.0/br/info:eu-repo/semantics/openAccessMatéria condensadaElasticidadeEnergy and interaction forces in classical two-dimensional crystals with inhomogeneous goarse-grained densityinfo:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/masterThesismestradoreponame:Repositório Institucional da UFPEinstname:Universidade Federal de Pernambuco (UFPE)instacron:UFPETHUMBNAILDISSERTAÇÃO Paulo César do Nascimento Pereira.pdf.jpgDISSERTAÇÃO Paulo César do Nascimento Pereira.pdf.jpgGenerated Thumbnailimage/jpeg1246https://repositorio.ufpe.br/bitstream/123456789/24738/5/DISSERTA%c3%87%c3%83O%20Paulo%20C%c3%a9sar%20do%20Nascimento%20Pereira.pdf.jpg5a4c889e8154a7d0022aebf9fe84f1e7MD55ORIGINALDISSERTAÇÃO Paulo César do Nascimento Pereira.pdfDISSERTAÇÃO Paulo César do Nascimento Pereira.pdfapplication/pdf2703403https://repositorio.ufpe.br/bitstream/123456789/24738/1/DISSERTA%c3%87%c3%83O%20Paulo%20C%c3%a9sar%20do%20Nascimento%20Pereira.pdf82c945ba1355407e2c749d7e6fd0b116MD51LICENSElicense.txtlicense.txttext/plain; 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dc.title.pt_BR.fl_str_mv Energy and interaction forces in classical two-dimensional crystals with inhomogeneous goarse-grained density
title Energy and interaction forces in classical two-dimensional crystals with inhomogeneous goarse-grained density
spellingShingle Energy and interaction forces in classical two-dimensional crystals with inhomogeneous goarse-grained density
PEREIRA, Paulo César do Nascimento
Matéria condensada
Elasticidade
title_short Energy and interaction forces in classical two-dimensional crystals with inhomogeneous goarse-grained density
title_full Energy and interaction forces in classical two-dimensional crystals with inhomogeneous goarse-grained density
title_fullStr Energy and interaction forces in classical two-dimensional crystals with inhomogeneous goarse-grained density
title_full_unstemmed Energy and interaction forces in classical two-dimensional crystals with inhomogeneous goarse-grained density
title_sort Energy and interaction forces in classical two-dimensional crystals with inhomogeneous goarse-grained density
author PEREIRA, Paulo César do Nascimento
author_facet PEREIRA, Paulo César do Nascimento
author_role author
dc.contributor.authorLattes.pt_BR.fl_str_mv http://lattes.cnpq.br/2084709462294618
dc.contributor.advisorLattes.pt_BR.fl_str_mv http://lattes.cnpq.br/1975993976921900
dc.contributor.author.fl_str_mv PEREIRA, Paulo César do Nascimento
dc.contributor.advisor1.fl_str_mv APOLINÁRIO, Sergio Wlademir da Silva
contributor_str_mv APOLINÁRIO, Sergio Wlademir da Silva
dc.subject.por.fl_str_mv Matéria condensada
Elasticidade
topic Matéria condensada
Elasticidade
description In this M.Sc. thesis, we concentrate on classical two-dimensional crystals with soft pairwise interactions at low temperatures. Typically, the triangular lattice is the configuration which minimizes the interaction potential energy. Such energy is calculated through a lattice sum and we show some analytical approximations to it. We will be interested in cases where the coarse-grained density slightly depends on position. This can be caused by an external force on particles. Then the softness of interactions will determine how the coarse-grained density must vary. At equilibrium, the density gradient generates an equal and opposite force, resultant from interactions. In the limit of small gradients, the system has few defects and locally conserves the triangular lattice symmetry. Although the system’s configuration has a huge number of freedom degrees, only the position dependence of coarse-grained density is our relevant information at scales much greater than the nearest-neighbors’ distance. We then investigate the calculation of the resultant interaction force due to such density variations with position. A simple and intuitive, but not rigorous, way to obtain the Dynamical Density Functional Theory (DDFT) force is showed. Also, a microscopic approach giving the same result is proposed. In equilibrium, this force gives a minimization of the total free energy and it has been successful in many nonequilibrium systems. We show that this force fails in the case of long wavelength longitudinal waves, giving a smaller result for the sound speed. Also, in recent computer simulations, we obtained equilibrium configurations where the same correction in the force is needed. We show that such correction can be obtained by adding a correction term in the free energy, calculated as a functional of coarse-grained density.
publishDate 2016
dc.date.issued.fl_str_mv 2016-04-13
dc.date.accessioned.fl_str_mv 2018-06-04T21:35:05Z
dc.date.available.fl_str_mv 2018-06-04T21:35:05Z
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.driver.fl_str_mv info:eu-repo/semantics/masterThesis
format masterThesis
status_str publishedVersion
dc.identifier.uri.fl_str_mv https://repositorio.ufpe.br/handle/123456789/24738
url https://repositorio.ufpe.br/handle/123456789/24738
dc.language.iso.fl_str_mv eng
language eng
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rights_invalid_str_mv Attribution-NonCommercial-NoDerivs 3.0 Brazil
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dc.publisher.none.fl_str_mv Universidade Federal de Pernambuco
dc.publisher.program.fl_str_mv Programa de Pos Graduacao em Fisica
dc.publisher.initials.fl_str_mv UFPE
dc.publisher.country.fl_str_mv Brasil
publisher.none.fl_str_mv Universidade Federal de Pernambuco
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