Autonomous quantum Maxwell’s demon using superconducting devices

Detalhes bibliográficos
Autor(a) principal: Gabriela Fernandes Martins
Data de Publicação: 2019
Tipo de documento: Dissertação
Idioma: eng
Título da fonte: Biblioteca Digital de Teses e Dissertações da USP
Texto Completo: https://doi.org/10.11606/D.76.2019.tde-20092019-163128
Resumo: During the last years, with the evolution of technology enabling the control of nano-mesoscopic systems, the possibility of experimentally implementing a Maxwell’s demon has aroused much interest. Its classical version has already been implemented, in photonic and electronic systems, and currently its quantum version is being broadly studied. In this context, the purpose of this work is the development of a protocol for the implementation of the quantum version of an autonomous Maxwell’s demon in a system of superconducting qubits. The system is composed of an Asymmetrical Single-Cooper-Pair Transistor, ASCPT, which has its extremities in contact with heat baths, such that the left one has a lower temperature than the right one. And of a device of two interacting Cooper-Pair Boxes, CPB’s, named as an ECPB, for Extended Cooper-Pair Box. The ECPB is also in contact with a heat bath and possess a genuine quantum feature, entanglement, being described by its antisymmetric and symmetric states, that couple capacitively to the ASCPT with different strengths. A specific operating regime was found where the spontaneous dynamics of the tunneling of Cooper pairs through the ASCPT, will led to a heat transport from the bath in contact with the left extremity of the ASCPT to the bath at the right. And so, as in Maxwell’s original thought experiment, the demon, which is composed by the ECPB and the island of the ASCPT, mediates a heat flux from a cold to a hot bath, without the expense of work. However as expected, the violation of the 2nd law of thermodynamics does not occur, as during the dynamics heat is also released to the bath in contact with the ECPB, compensating the decrease of entropy that occurs in the baths in contact with the ASCPT.
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spelling info:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/masterThesis Autonomous quantum Maxwell’s demon using superconducting devices Demônio de Maxwell quântico em um sistema de dispositivos supercondutores 2019-07-16Frederico Borges de BritoMarcus Vinicius Segantini BonançaGustavo Garcia RigolinGabriela Fernandes MartinsUniversidade de São PauloFísicaUSPBR Demônio de Maxwell Dispositivos supercondutores Maxwell’s demon Open quantum systems Sistemas quânticos abertos Superconducting devices During the last years, with the evolution of technology enabling the control of nano-mesoscopic systems, the possibility of experimentally implementing a Maxwell’s demon has aroused much interest. Its classical version has already been implemented, in photonic and electronic systems, and currently its quantum version is being broadly studied. In this context, the purpose of this work is the development of a protocol for the implementation of the quantum version of an autonomous Maxwell’s demon in a system of superconducting qubits. The system is composed of an Asymmetrical Single-Cooper-Pair Transistor, ASCPT, which has its extremities in contact with heat baths, such that the left one has a lower temperature than the right one. And of a device of two interacting Cooper-Pair Boxes, CPB’s, named as an ECPB, for Extended Cooper-Pair Box. The ECPB is also in contact with a heat bath and possess a genuine quantum feature, entanglement, being described by its antisymmetric and symmetric states, that couple capacitively to the ASCPT with different strengths. A specific operating regime was found where the spontaneous dynamics of the tunneling of Cooper pairs through the ASCPT, will led to a heat transport from the bath in contact with the left extremity of the ASCPT to the bath at the right. And so, as in Maxwell’s original thought experiment, the demon, which is composed by the ECPB and the island of the ASCPT, mediates a heat flux from a cold to a hot bath, without the expense of work. However as expected, the violation of the 2nd law of thermodynamics does not occur, as during the dynamics heat is also released to the bath in contact with the ECPB, compensating the decrease of entropy that occurs in the baths in contact with the ASCPT. Nos últimos anos, com a evolução da tecnologia que permite o controle de sistemas nano-mesoscópicos, a possibilidade de se implementar um demônio de Maxwell despertou muito interesse. A sua versão clássica já foi realizada experimentalmente com sucesso em sistemas fotônicos e eletrônicos e atualmente a versão quântica tem sido amplamente estudada. Neste contexto, o objetivo deste trabalho é desenvolver um protocolo para a implementação de uma versão quântica de um demônio de Maxwell autônomo utilizando dispositivos supercondutores. O sistema é composto por um Asymmetrical Single-Cooper-Pair Transistor, ASCPT, que possui as suas extremidades em contato com banhos térmicos, sendo que o banho à esquerda possui uma temperatura inferior ao da direita. E por um dispositivo composto por dois Cooper-Pair Boxes, CPB’s, interagentes, denominado ECPB, sigla para Extended Cooper-Pair Box. O ECPB também se encontra em contato com um banho e possui uma característica genuinamente quântica, emaranhamento, sendo descrito por seus estados antissimétrico e simétrico, que se acoplam capacitivamente ao ASCPT com intensidades distintas. Encontrou-se que em um regime de operação específico a dinâmica espontânea de tunelamento de pares de Cooper ao longo do ASCPT origina o transporte de calor do banho à esquerda do ASCPT, ao banho à direita. Desta forma, assim como proposto originalmente por Maxwell, o demônio, composto pelo ECPB e pela ilha do ASCPT, media um fluxo de calor de um banho frio para um banho quente, sem a realização alguma de trabalho. Contudo como esperado, a violação da 2ª lei da termodinâmica não ocorre, já que durante a dinâmica calor é liberado ao banho em contato com o dispositivo de CPB’s, compensando a diminuição de entropia que ocorre nos banhos em contato com o ASCPT. https://doi.org/10.11606/D.76.2019.tde-20092019-163128info:eu-repo/semantics/openAccessengreponame:Biblioteca Digital de Teses e Dissertações da USPinstname:Universidade de São Paulo (USP)instacron:USP2023-12-21T19:33:47Zoai:teses.usp.br:tde-20092019-163128Biblioteca Digital de Teses e Dissertaçõeshttp://www.teses.usp.br/PUBhttp://www.teses.usp.br/cgi-bin/mtd2br.plvirginia@if.usp.br|| atendimento@aguia.usp.br||virginia@if.usp.bropendoar:27212023-12-22T12:59:16.407230Biblioteca Digital de Teses e Dissertações da USP - Universidade de São Paulo (USP)false
dc.title.en.fl_str_mv Autonomous quantum Maxwell’s demon using superconducting devices
dc.title.alternative.pt.fl_str_mv Demônio de Maxwell quântico em um sistema de dispositivos supercondutores
title Autonomous quantum Maxwell’s demon using superconducting devices
spellingShingle Autonomous quantum Maxwell’s demon using superconducting devices
Gabriela Fernandes Martins
title_short Autonomous quantum Maxwell’s demon using superconducting devices
title_full Autonomous quantum Maxwell’s demon using superconducting devices
title_fullStr Autonomous quantum Maxwell’s demon using superconducting devices
title_full_unstemmed Autonomous quantum Maxwell’s demon using superconducting devices
title_sort Autonomous quantum Maxwell’s demon using superconducting devices
author Gabriela Fernandes Martins
author_facet Gabriela Fernandes Martins
author_role author
dc.contributor.advisor1.fl_str_mv Frederico Borges de Brito
dc.contributor.referee1.fl_str_mv Marcus Vinicius Segantini Bonança
dc.contributor.referee2.fl_str_mv Gustavo Garcia Rigolin
dc.contributor.author.fl_str_mv Gabriela Fernandes Martins
contributor_str_mv Frederico Borges de Brito
Marcus Vinicius Segantini Bonança
Gustavo Garcia Rigolin
description During the last years, with the evolution of technology enabling the control of nano-mesoscopic systems, the possibility of experimentally implementing a Maxwell’s demon has aroused much interest. Its classical version has already been implemented, in photonic and electronic systems, and currently its quantum version is being broadly studied. In this context, the purpose of this work is the development of a protocol for the implementation of the quantum version of an autonomous Maxwell’s demon in a system of superconducting qubits. The system is composed of an Asymmetrical Single-Cooper-Pair Transistor, ASCPT, which has its extremities in contact with heat baths, such that the left one has a lower temperature than the right one. And of a device of two interacting Cooper-Pair Boxes, CPB’s, named as an ECPB, for Extended Cooper-Pair Box. The ECPB is also in contact with a heat bath and possess a genuine quantum feature, entanglement, being described by its antisymmetric and symmetric states, that couple capacitively to the ASCPT with different strengths. A specific operating regime was found where the spontaneous dynamics of the tunneling of Cooper pairs through the ASCPT, will led to a heat transport from the bath in contact with the left extremity of the ASCPT to the bath at the right. And so, as in Maxwell’s original thought experiment, the demon, which is composed by the ECPB and the island of the ASCPT, mediates a heat flux from a cold to a hot bath, without the expense of work. However as expected, the violation of the 2nd law of thermodynamics does not occur, as during the dynamics heat is also released to the bath in contact with the ECPB, compensating the decrease of entropy that occurs in the baths in contact with the ASCPT.
publishDate 2019
dc.date.issued.fl_str_mv 2019-07-16
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.driver.fl_str_mv info:eu-repo/semantics/masterThesis
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dc.identifier.uri.fl_str_mv https://doi.org/10.11606/D.76.2019.tde-20092019-163128
url https://doi.org/10.11606/D.76.2019.tde-20092019-163128
dc.language.iso.fl_str_mv eng
language eng
dc.rights.driver.fl_str_mv info:eu-repo/semantics/openAccess
eu_rights_str_mv openAccess
dc.publisher.none.fl_str_mv Universidade de São Paulo
dc.publisher.program.fl_str_mv Física
dc.publisher.initials.fl_str_mv USP
dc.publisher.country.fl_str_mv BR
publisher.none.fl_str_mv Universidade de São Paulo
dc.source.none.fl_str_mv reponame:Biblioteca Digital de Teses e Dissertações da USP
instname:Universidade de São Paulo (USP)
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