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  • Source: Bulletin of the American Physical Society. Conference titles: APS March Meeting. Unidades: IF, IFSC

    Subjects: FÍSICA TEÓRICA, MAGNETISMO

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      HOYOS, José Abel e VOJTA, Matthias e ANDRADE, Eric de Castro e. From disorder to order and back again. Bulletin of the American Physical Society. College Park: Instituto de Física, Universidade de São Paulo. Disponível em: https://meetings-aps.ez67.periodicos.capes.gov.br/Meeting/MAR23/Session/T42.4. Acesso em: 05 jun. 2024. , 2024
    • APA

      Hoyos, J. A., Vojta, M., & Andrade, E. de C. e. (2024). From disorder to order and back again. Bulletin of the American Physical Society. College Park: Instituto de Física, Universidade de São Paulo. Recuperado de https://meetings-aps.ez67.periodicos.capes.gov.br/Meeting/MAR23/Session/T42.4
    • NLM

      Hoyos JA, Vojta M, Andrade E de C e. From disorder to order and back again [Internet]. Bulletin of the American Physical Society. 2024 ; 2024[citado 2024 jun. 05 ] Available from: https://meetings-aps.ez67.periodicos.capes.gov.br/Meeting/MAR23/Session/T42.4
    • Vancouver

      Hoyos JA, Vojta M, Andrade E de C e. From disorder to order and back again [Internet]. Bulletin of the American Physical Society. 2024 ; 2024[citado 2024 jun. 05 ] Available from: https://meetings-aps.ez67.periodicos.capes.gov.br/Meeting/MAR23/Session/T42.4
  • Source: Physical Review B. Unidades: IFSC, IF

    Subjects: POÇOS QUÂNTICOS, SEMICONDUTORES, CAMPO MAGNÉTICO, FÍSICA MODERNA

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      PUSEP, Yuri et al. Magnetic field effect on diffusion of photogenerated holes in a mesoscopic GaAs channel. Physical Review B, v. 109, n. 7, p. 075429-1-075429-6, 2024Tradução . . Disponível em: https://doi.org/10.1103/PhysRevB.109.075429. Acesso em: 05 jun. 2024.
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      Pusep, Y., Teodoro, M. D., Patricio, M. A. T., Jacobsen, G. M., Gusev, G., & Bakarov, A. (2024). Magnetic field effect on diffusion of photogenerated holes in a mesoscopic GaAs channel. Physical Review B, 109( 7), 075429-1-075429-6. doi:10.1103/PhysRevB.109.075429
    • NLM

      Pusep Y, Teodoro MD, Patricio MAT, Jacobsen GM, Gusev G, Bakarov A. Magnetic field effect on diffusion of photogenerated holes in a mesoscopic GaAs channel [Internet]. Physical Review B. 2024 ; 109( 7): 075429-1-075429-6.[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.109.075429
    • Vancouver

      Pusep Y, Teodoro MD, Patricio MAT, Jacobsen GM, Gusev G, Bakarov A. Magnetic field effect on diffusion of photogenerated holes in a mesoscopic GaAs channel [Internet]. Physical Review B. 2024 ; 109( 7): 075429-1-075429-6.[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.109.075429
  • Source: Applied Electronic Materials. Unidades: IF, EP

    Subjects: CARBONO, ESTRUTURA QUÍMICA, CONDUTIVIDADE ELÉTRICA

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      IPAVES, Bruno et al. Tuning the electronic and mechanical properties of two-dimensional diamond through N and B doping. Applied Electronic Materials, v. 6, n. 1, p. 386–393, 2024Tradução . . Disponível em: https://repositorio.usp.br/directbitstream/84c80d10-b7cf-4e3a-8d14-8f4b797a015f/Tuning%20the%20Electronic%20and%20Mechanical%20Properties%20of%20Two-Dimensional%20Diamond%20through%20N%20and%20B%20Doping.pdf. Acesso em: 05 jun. 2024.
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      Ipaves, B., Justo Filho, J. F., Sanyal, B., & Assali, L. V. C. (2024). Tuning the electronic and mechanical properties of two-dimensional diamond through N and B doping. Applied Electronic Materials, 6( 1), 386–393. doi:10.1021/acsaelm.3c01398
    • NLM

      Ipaves B, Justo Filho JF, Sanyal B, Assali LVC. Tuning the electronic and mechanical properties of two-dimensional diamond through N and B doping [Internet]. Applied Electronic Materials. 2024 ; 6( 1): 386–393.[citado 2024 jun. 05 ] Available from: https://repositorio.usp.br/directbitstream/84c80d10-b7cf-4e3a-8d14-8f4b797a015f/Tuning%20the%20Electronic%20and%20Mechanical%20Properties%20of%20Two-Dimensional%20Diamond%20through%20N%20and%20B%20Doping.pdf
    • Vancouver

      Ipaves B, Justo Filho JF, Sanyal B, Assali LVC. Tuning the electronic and mechanical properties of two-dimensional diamond through N and B doping [Internet]. Applied Electronic Materials. 2024 ; 6( 1): 386–393.[citado 2024 jun. 05 ] Available from: https://repositorio.usp.br/directbitstream/84c80d10-b7cf-4e3a-8d14-8f4b797a015f/Tuning%20the%20Electronic%20and%20Mechanical%20Properties%20of%20Two-Dimensional%20Diamond%20through%20N%20and%20B%20Doping.pdf
  • Source: ACS Applied Polymer Materials. Unidades: IF, IQ

    Subjects: MICROSCOPIA, IMPRESSÃO 3-D

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      ALAVARSE, Alex Carvalho et al. Magnetic force microscopy and Nanoindentation on 3D printed magnetic Scaffolds for neuronal cell growth. ACS Applied Polymer Materials, v. 6, n. 2, p. 1410-1421, 2024Tradução . . Disponível em: https://dx.doi.org/10.1021/acsapm.3c02565. Acesso em: 05 jun. 2024.
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      Alavarse, A. C., Silva, R. L. C. G. da, Bohlouli, P. G., Cornejo, D. R., Ulrich, H., Shavandi, A., & Petri, D. F. S. (2024). Magnetic force microscopy and Nanoindentation on 3D printed magnetic Scaffolds for neuronal cell growth. ACS Applied Polymer Materials, 6( 2), 1410-1421. doi:https://dx.doi.org/10.1021/acsapm.3c02565
    • NLM

      Alavarse AC, Silva RLCG da, Bohlouli PG, Cornejo DR, Ulrich H, Shavandi A, Petri DFS. Magnetic force microscopy and Nanoindentation on 3D printed magnetic Scaffolds for neuronal cell growth [Internet]. ACS Applied Polymer Materials. 2024 ; 6( 2): 1410-1421.[citado 2024 jun. 05 ] Available from: https://dx.doi.org/10.1021/acsapm.3c02565
    • Vancouver

      Alavarse AC, Silva RLCG da, Bohlouli PG, Cornejo DR, Ulrich H, Shavandi A, Petri DFS. Magnetic force microscopy and Nanoindentation on 3D printed magnetic Scaffolds for neuronal cell growth [Internet]. ACS Applied Polymer Materials. 2024 ; 6( 2): 1410-1421.[citado 2024 jun. 05 ] Available from: https://dx.doi.org/10.1021/acsapm.3c02565
  • Source: Physical Review B. Unidades: IF, IFSC

    Subjects: POÇOS QUÂNTICOS, SEMICONDUTORES, CAMPO MAGNÉTICO

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      PATRICIO, Marco Antonio Tito et al. Hydrodynamics of electron-hole fluid photogenerated in a mesoscopic two-dimensional channel. Physical Review B, v. 109, n. 12, p. L121401-1-L121401-6, 2024Tradução . . Disponível em: https://doi.org/10.1103/PhysRevB.109.L121401. Acesso em: 05 jun. 2024.
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      Patricio, M. A. T., Jacobsen, G. M., Teodoro, M. D., Gusev, G., Bakarov, A., & Pusep, Y. (2024). Hydrodynamics of electron-hole fluid photogenerated in a mesoscopic two-dimensional channel. Physical Review B, 109( 12), L121401-1-L121401-6. doi:10.1103/PhysRevB.109.L121401
    • NLM

      Patricio MAT, Jacobsen GM, Teodoro MD, Gusev G, Bakarov A, Pusep Y. Hydrodynamics of electron-hole fluid photogenerated in a mesoscopic two-dimensional channel [Internet]. Physical Review B. 2024 ; 109( 12): L121401-1-L121401-6.[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.109.L121401
    • Vancouver

      Patricio MAT, Jacobsen GM, Teodoro MD, Gusev G, Bakarov A, Pusep Y. Hydrodynamics of electron-hole fluid photogenerated in a mesoscopic two-dimensional channel [Internet]. Physical Review B. 2024 ; 109( 12): L121401-1-L121401-6.[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.109.L121401
  • Source: AIP Advances. Conference titles: Annual Conference on Magnetism and Magnetic Materials. Unidade: IF

    Assunto: SPIN

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      KOOTEN, Sjoerd Cornelis Pieter Van e HENRIQUES, André Bohomoletz. Experimental evidence for ultrashort-lived spin polarons in EuSe. AIP Advances. Maryland: AIP Publishing. Disponível em: https://doi.org/10.1063/9.0000820. Acesso em: 05 jun. 2024. , 2024
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      Kooten, S. C. P. V., & Henriques, A. B. (2024). Experimental evidence for ultrashort-lived spin polarons in EuSe. AIP Advances. Maryland: AIP Publishing. doi:https://doi.org/10.1063/9.0000820
    • NLM

      Kooten SCPV, Henriques AB. Experimental evidence for ultrashort-lived spin polarons in EuSe [Internet]. AIP Advances. 2024 ; 14[citado 2024 jun. 05 ] Available from: https://doi.org/10.1063/9.0000820
    • Vancouver

      Kooten SCPV, Henriques AB. Experimental evidence for ultrashort-lived spin polarons in EuSe [Internet]. AIP Advances. 2024 ; 14[citado 2024 jun. 05 ] Available from: https://doi.org/10.1063/9.0000820
  • Source: Science Advances. Unidade: IF

    Assunto: TOPOLOGIA

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      GONZALEZ HERNANDEZ, Felix Guillermo. Observation of interplay between phonon chirality and electronic band topology. Science Advances, v. 9, n. 50, p. 1-7, 2023Tradução . . Disponível em: https://doi.org/10.1126/sciadv.adj4074. Acesso em: 05 jun. 2024.
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      Gonzalez Hernandez, F. G. (2023). Observation of interplay between phonon chirality and electronic band topology. Science Advances, 9( 50), 1-7. doi:https://doi.org/10.1126/sciadv.adj4074
    • NLM

      Gonzalez Hernandez FG. Observation of interplay between phonon chirality and electronic band topology [Internet]. Science Advances. 2023 ; 9( 50): 1-7.[citado 2024 jun. 05 ] Available from: https://doi.org/10.1126/sciadv.adj4074
    • Vancouver

      Gonzalez Hernandez FG. Observation of interplay between phonon chirality and electronic band topology [Internet]. Science Advances. 2023 ; 9( 50): 1-7.[citado 2024 jun. 05 ] Available from: https://doi.org/10.1126/sciadv.adj4074
  • Source: Physical Review B. Unidade: IF

    Assunto: TERMOELETRICIDADE

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      TIMPANARO, André Martin e GUARNIERI, Giacomo e LANDI, Gabriel Teixeira. Hyperaccurate thermoelectric currents. Physical Review B, v. 107, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevB.107.115432. Acesso em: 05 jun. 2024.
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      Timpanaro, A. M., Guarnieri, G., & Landi, G. T. (2023). Hyperaccurate thermoelectric currents. Physical Review B, 107. doi:10.1103/PhysRevB.107.115432
    • NLM

      Timpanaro AM, Guarnieri G, Landi GT. Hyperaccurate thermoelectric currents [Internet]. Physical Review B. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.107.115432
    • Vancouver

      Timpanaro AM, Guarnieri G, Landi GT. Hyperaccurate thermoelectric currents [Internet]. Physical Review B. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.107.115432
  • Source: Langmuir. Unidades: IF, EP

    Assunto: DIFRAÇÃO POR RAIOS X

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      HUNVIK, Kristoffer William Bø e KIRCH, Alexsandro e MIRANDA, Caetano Rodrigues. Intercalation of CO2 Selected by Type of Interlayer Cation in Dried Synthetic Hectorite. Langmuir, v. 39, n. 14, p. 4895–4903, 2023Tradução . . Disponível em: https://doi.org/10.1021/acs.langmuir.2c03093. Acesso em: 05 jun. 2024.
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      Hunvik, K. W. B., Kirch, A., & Miranda, C. R. (2023). Intercalation of CO2 Selected by Type of Interlayer Cation in Dried Synthetic Hectorite. Langmuir, 39( 14), 4895–4903. doi:10.1021/acs.langmuir.2c03093
    • NLM

      Hunvik KWB, Kirch A, Miranda CR. Intercalation of CO2 Selected by Type of Interlayer Cation in Dried Synthetic Hectorite [Internet]. Langmuir. 2023 ; 39( 14): 4895–4903.[citado 2024 jun. 05 ] Available from: https://doi.org/10.1021/acs.langmuir.2c03093
    • Vancouver

      Hunvik KWB, Kirch A, Miranda CR. Intercalation of CO2 Selected by Type of Interlayer Cation in Dried Synthetic Hectorite [Internet]. Langmuir. 2023 ; 39( 14): 4895–4903.[citado 2024 jun. 05 ] Available from: https://doi.org/10.1021/acs.langmuir.2c03093
  • Source: Physical Review Materials. Unidade: IF

    Assunto: ESTRUTURAS

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      ZANFROGNINI, Matteo et al. Quenching of low-energy optical absorption in bilayer C3N polytypes. Physical Review Materials, v. 7, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevMaterials.7.064006. Acesso em: 05 jun. 2024.
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      Zanfrognini, M., Bonacci, M., Molinari, E., Ruini, A., Caldas Marilia Junqueira,, Ferretti, A., et al. (2023). Quenching of low-energy optical absorption in bilayer C3N polytypes. Physical Review Materials, 7. doi:10.1103/PhysRevMaterials.7.064006
    • NLM

      Zanfrognini M, Bonacci M, Molinari E, Ruini A, Caldas Marilia Junqueira, Ferretti A, Paleari F, Varsano D. Quenching of low-energy optical absorption in bilayer C3N polytypes [Internet]. Physical Review Materials. 2023 ; 7[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevMaterials.7.064006
    • Vancouver

      Zanfrognini M, Bonacci M, Molinari E, Ruini A, Caldas Marilia Junqueira, Ferretti A, Paleari F, Varsano D. Quenching of low-energy optical absorption in bilayer C3N polytypes [Internet]. Physical Review Materials. 2023 ; 7[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevMaterials.7.064006
  • Source: Physical Review A. Unidade: IF

    Subjects: ASSIMETRIA, MODELO DE ISING

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      ZAWADZKI, Krissia et al. Non-Gaussian work statistics at finite-time driving. Physical Review A, v. 107, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevA.107.012209. Acesso em: 05 jun. 2024.
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      Zawadzki, K., Kiely, A., Landi, G. T., & Campbell, S. (2023). Non-Gaussian work statistics at finite-time driving. Physical Review A, 107. doi:10.1103/PhysRevA.107.012209
    • NLM

      Zawadzki K, Kiely A, Landi GT, Campbell S. Non-Gaussian work statistics at finite-time driving [Internet]. Physical Review A. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevA.107.012209
    • Vancouver

      Zawadzki K, Kiely A, Landi GT, Campbell S. Non-Gaussian work statistics at finite-time driving [Internet]. Physical Review A. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevA.107.012209
  • Source: Physical Review Research. Unidade: IF

    Assunto: ENTROPIA

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      KIELY, Anthony et al. Entropy of the quantum work distribution. Physical Review Research, v. 5, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevResearch.5.L022010. Acesso em: 05 jun. 2024.
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      Kiely, A., O’Connor, E., Fogarty, T., Landi, G. T., & Campbell, S. (2023). Entropy of the quantum work distribution. Physical Review Research, 5. doi:10.1103/PhysRevResearch.5.L022010
    • NLM

      Kiely A, O’Connor E, Fogarty T, Landi GT, Campbell S. Entropy of the quantum work distribution [Internet]. Physical Review Research. 2023 ; 5[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevResearch.5.L022010
    • Vancouver

      Kiely A, O’Connor E, Fogarty T, Landi GT, Campbell S. Entropy of the quantum work distribution [Internet]. Physical Review Research. 2023 ; 5[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevResearch.5.L022010
  • Source: Physical Review A. Unidade: IF

    Assunto: GASES

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      COPPOLA, Michele e KAREVSKI, Dragi e LANDI, Gabriel Teixeira. Wigner dynamics for quantum gases under inhomogeneous gain and loss processes with dephasing. Physical Review A, v. 107, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevA.107.052213. Acesso em: 05 jun. 2024.
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      Coppola, M., Karevski, D., & Landi, G. T. (2023). Wigner dynamics for quantum gases under inhomogeneous gain and loss processes with dephasing. Physical Review A, 107. doi:10.1103/PhysRevA.107.052213
    • NLM

      Coppola M, Karevski D, Landi GT. Wigner dynamics for quantum gases under inhomogeneous gain and loss processes with dephasing [Internet]. Physical Review A. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevA.107.052213
    • Vancouver

      Coppola M, Karevski D, Landi GT. Wigner dynamics for quantum gases under inhomogeneous gain and loss processes with dephasing [Internet]. Physical Review A. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevA.107.052213
  • Source: Physical Review E. Unidade: IF

    Assunto: SPIN

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      SILVA, Saulo Henrique Santos e LANDI, Gabriel Teixeira e PEREIRA, Emmanuel. Nontrivial effect of dephasing: Enhancement of rectification of spin current in graded X X chains". Physical Review E, v. 107, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevE.107.054123. Acesso em: 05 jun. 2024.
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      Silva, S. H. S., Landi, G. T., & Pereira, E. (2023). Nontrivial effect of dephasing: Enhancement of rectification of spin current in graded X X chains". Physical Review E, 107. doi:10.1103/PhysRevE.107.054123
    • NLM

      Silva SHS, Landi GT, Pereira E. Nontrivial effect of dephasing: Enhancement of rectification of spin current in graded X X chains" [Internet]. Physical Review E. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevE.107.054123
    • Vancouver

      Silva SHS, Landi GT, Pereira E. Nontrivial effect of dephasing: Enhancement of rectification of spin current in graded X X chains" [Internet]. Physical Review E. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevE.107.054123
  • Source: Physical Review Research. Unidade: IF

    Assunto: SISTEMA QUÂNTICO

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      PRECH, Kacper et al. Entanglement and thermokinetic uncertainty relations in coherent mesoscopic transport. Physical Review Research, v. 5, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevResearch.5.023155. Acesso em: 05 jun. 2024.
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      Prech, K., Johansson, P., Nyholm, E., Landi, G. T., Verdozzi, C., Samuelsson, P., & Potts, P. P. (2023). Entanglement and thermokinetic uncertainty relations in coherent mesoscopic transport. Physical Review Research, 5. doi:https://doi.org/10.1103/PhysRevResearch.5.023155
    • NLM

      Prech K, Johansson P, Nyholm E, Landi GT, Verdozzi C, Samuelsson P, Potts PP. Entanglement and thermokinetic uncertainty relations in coherent mesoscopic transport [Internet]. Physical Review Research. 2023 ; 5[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevResearch.5.023155
    • Vancouver

      Prech K, Johansson P, Nyholm E, Landi GT, Verdozzi C, Samuelsson P, Potts PP. Entanglement and thermokinetic uncertainty relations in coherent mesoscopic transport [Internet]. Physical Review Research. 2023 ; 5[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevResearch.5.023155
  • Source: Physical Review B. Unidade: IF

    Assunto: ESPECTROSCOPIA

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      MENDONÇA, Bruna Shinohara de et al. Near zero energy Caroli–de Gennes–Matricon vortex states in the presence of impurities. Physical Review B, v. 107, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevB.107.184509. Acesso em: 05 jun. 2024.
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      Mendonça, B. S. de, Manesco, A. L. R., Sandler, N., & Silva, L. G. G. de V. D. da. (2023). Near zero energy Caroli–de Gennes–Matricon vortex states in the presence of impurities. Physical Review B, 107. doi:10.1103/PhysRevB.107.184509
    • NLM

      Mendonça BS de, Manesco ALR, Sandler N, Silva LGG de VD da. Near zero energy Caroli–de Gennes–Matricon vortex states in the presence of impurities [Internet]. Physical Review B. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.107.184509
    • Vancouver

      Mendonça BS de, Manesco ALR, Sandler N, Silva LGG de VD da. Near zero energy Caroli–de Gennes–Matricon vortex states in the presence of impurities [Internet]. Physical Review B. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.107.184509
  • Source: Physical Review B. Unidade: IF

    Assunto: SIMETRIA

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      ZANFROGNINI, Matteo et al. Effect of uniaxial strain on the excitonic properties of monolayer C3N: A symmetry-based analysis. Physical Review B, v. 107, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevB.107.045430. Acesso em: 05 jun. 2024.
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      Zanfrognini, M., Spallanzani, N., Bonacci, M., Molinari, E., Ruini, A., Caldas Marilia Junqueira,, et al. (2023). Effect of uniaxial strain on the excitonic properties of monolayer C3N: A symmetry-based analysis. Physical Review B, 107. doi:10.1103/PhysRevB.107.045430
    • NLM

      Zanfrognini M, Spallanzani N, Bonacci M, Molinari E, Ruini A, Caldas Marilia Junqueira, Ferretti A, Varsano D. Effect of uniaxial strain on the excitonic properties of monolayer C3N: A symmetry-based analysis [Internet]. Physical Review B. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.107.045430
    • Vancouver

      Zanfrognini M, Spallanzani N, Bonacci M, Molinari E, Ruini A, Caldas Marilia Junqueira, Ferretti A, Varsano D. Effect of uniaxial strain on the excitonic properties of monolayer C3N: A symmetry-based analysis [Internet]. Physical Review B. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.107.045430
  • Source: Physical Review B. Unidade: IF

    Assunto: TERMODINÂMICA

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      LACERDA, Artur Machado et al. Quantum thermodynamics with fast driving and strong coupling via the mesoscopic leads approach. Physical Review B, v. 107, 2023Tradução . . Disponível em: https://doi.org/10.1103/PhysRevB.107.195117. Acesso em: 05 jun. 2024.
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      Lacerda, A. M., Purkayastha, A., Kewming, M. J., Goold, J., & Landi, G. T. (2023). Quantum thermodynamics with fast driving and strong coupling via the mesoscopic leads approach. Physical Review B, 107. doi:10.1103/PhysRevB.107.195117
    • NLM

      Lacerda AM, Purkayastha A, Kewming MJ, Goold J, Landi GT. Quantum thermodynamics with fast driving and strong coupling via the mesoscopic leads approach [Internet]. Physical Review B. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.107.195117
    • Vancouver

      Lacerda AM, Purkayastha A, Kewming MJ, Goold J, Landi GT. Quantum thermodynamics with fast driving and strong coupling via the mesoscopic leads approach [Internet]. Physical Review B. 2023 ; 107[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/PhysRevB.107.195117
  • Conference titles: Symposium on Microelectronics Technology and Devices (SBMicro). Unidade: IF

    Subjects: TOMOGRAFIA, SEMICONDUTORES

    Acesso à fonteDOIHow to cite
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    • ABNT

      SANTOS, Thales Borrely dos et al. On the importance of atom probe tomography for the development of new nanoscale devices. 2022, Anais.. New York: IEEE, 2022. Disponível em: https://doi.org/10.1109/SBMICRO55822.2022.9881039. Acesso em: 05 jun. 2024.
    • APA

      Santos, T. B. dos, Huang, T. -Y., Yang, Y. -C., Goldman, R. S., & Quivy, A. A. (2022). On the importance of atom probe tomography for the development of new nanoscale devices. In . New York: IEEE. doi:10.1109/SBMICRO55822.2022.9881039
    • NLM

      Santos TB dos, Huang T-Y, Yang Y-C, Goldman RS, Quivy AA. On the importance of atom probe tomography for the development of new nanoscale devices [Internet]. 2022 ;[citado 2024 jun. 05 ] Available from: https://doi.org/10.1109/SBMICRO55822.2022.9881039
    • Vancouver

      Santos TB dos, Huang T-Y, Yang Y-C, Goldman RS, Quivy AA. On the importance of atom probe tomography for the development of new nanoscale devices [Internet]. 2022 ;[citado 2024 jun. 05 ] Available from: https://doi.org/10.1109/SBMICRO55822.2022.9881039
  • Source: Reviews of Modern Physics. Unidade: IF

    Assunto: SISTEMA QUÂNTICO

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      LANDI, Gabriel Teixeira e POLETTI, Dario e SCHALLER, Gernot. Nonequilibrium boundary-driven quantum systems: Models, methods, and properties. Reviews of Modern Physics, v. 94, 2022Tradução . . Disponível em: https://doi.org/10.1103/RevModPhys.94.045006. Acesso em: 05 jun. 2024.
    • APA

      Landi, G. T., Poletti, D., & Schaller, G. (2022). Nonequilibrium boundary-driven quantum systems: Models, methods, and properties. Reviews of Modern Physics, 94. doi:10.1103/RevModPhys.94.045006
    • NLM

      Landi GT, Poletti D, Schaller G. Nonequilibrium boundary-driven quantum systems: Models, methods, and properties [Internet]. Reviews of Modern Physics. 2022 ; 94[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/RevModPhys.94.045006
    • Vancouver

      Landi GT, Poletti D, Schaller G. Nonequilibrium boundary-driven quantum systems: Models, methods, and properties [Internet]. Reviews of Modern Physics. 2022 ; 94[citado 2024 jun. 05 ] Available from: https://doi.org/10.1103/RevModPhys.94.045006

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