Kun Dong, Feng Huo, Suojiang Zhang. Thermodynamics at microscales: 3D→2D, 1D and 0D. Green Energy&Environment, 2020, 5(3): 251-258. doi: 10.1016/j.gee.2020.07.022
Citation: Kun Dong, Feng Huo, Suojiang Zhang. Thermodynamics at microscales: 3D→2D, 1D and 0D. Green Energy&Environment, 2020, 5(3): 251-258. doi: 10.1016/j.gee.2020.07.022

Thermodynamics at microscales: 3D→2D, 1D and 0D

doi: 10.1016/j.gee.2020.07.022
  • Today, the laws of traditional thermodynamics are facing challenges when science is growing rapidly toward the microscale-world, even quantum hypothesis. In this work, the thermodynamics of nano-confinement and quantum thermodynamics are summarized to illustrate their developments at the microscales.

     

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  • [1]
    J. Howard, Nature 389 (1997) 561-567.
    [2]
    Z.L. Wang, Faraday Discuss 176 (2014) 447-458.
    [3]
    M. Alcoutlabi, G.B. Mckenna, J. Phys. Condens. Matter 17 (2005) R461-R524.
    [4]
    J.Gemmer, M.Michel, G.Mahler, Quantum Thermodynamics, second ed., Springer, Berlin, Heidelberg, 2009.
    [5]
    L. Del Rio, J. Aberg, R. Renner, O. Dahlsten, V. Vedral, Nature 474 (2011) 61.
    [6]
    D. Castelvecchi, Nature 543 (2017) 597-598.
    [7]
    J.C. Maxwell, Nature 17 (1878) 278-280.
    [8]
    G. Hummer, J.C. Rasaiah, J.P. Noworyta, Nature 414 (2003) 188-190.
    [9]
    T.A. Pascal, W.A. Goddard, Y. Jung, Proc. Natl. Acad. Sci. U.S.A. 108 (2011) 11794-11798.
    [10]
    D. Takaiwa, I. Hatano, K. Koga, H. Tanaka, Proc. Natl. Acad. Sci. U.S.A. 105 (2008) 39-43.
    [11]
    C. Wang, Y. Wang, Y. Lu, H. He, F. Huo, K. Dong, N. Wei, S. Zhang, Phys. Chem. Chem. Phys. 21 (2019) 12767--12776.
    [12]
    L.D. Gelb, K.E. Gubbin, R. Radhakrishnan, M. Sliwinska-Bartkowiak, Rep. Prog. Phys. 62 (1999) 1573-1659.
    [13]
    C. Alba-Simionesco, B. Coasne, G. Dosseh, G. Dudziak, K.E. Gubbins, R. Radhakrishnan, M. Sliwinska-Bartkowiak, J. Phys. Condens. Matter 18 (2006) R15-R68.
    [14]
    B. Coasne, A. Galarneau, R.J.-M. Pellenq, F.D. Renzo, Chem. Soc. Rev. 42 (2003) 4141-4171.
    [15]
    S. Chakraborty, H. Kumar, C. Dasgupta, P.K. Maiti, Acc. Chem. Res. 50 (2017) 2146.
    [16]
    A.Z. Patashinski, R. Orlik, A. C. Mitus, B.A. Grzybowski, M.A. Ratner, J. Phys. Chem. C 114 (2010) 20749-20755.
    [17]
    A. Martinez, M. Castro, C. Mccabe, A. Gil-Villegas, J. Chem. Phys. 126 (2007) 74707.
    [18]
    J. Rossnagel, S.T. Dawkins, K.N. Tolazzi, O. Abah, E. Lutz, F. Schmidt-Kaler, K. Singer, Science 352 (2016) 325-329.
    [19]
    S. Whalen, M. Thompson, C.R. D. Bahr, R. Richards, Sens. Actuators, A 104 (2003) 290-298.
    [20]
    P.G. Steeneken, K.L. Phan, M.J. Goossens, G.E.J. Koops, G.J.A.M. Brom, C.V.D. Avoort, J.T.M.V. Beek, Nat. Phys. 7 (2011) 354-359.
    [21]
    J.-P. Brantut, C. Grenier, J. Meineke, D. Stadler, S. Krinner, C. Kollath, T. Esslinger, A. Georges, Science 342 (2013) 713-715.
    [22]
    T. Hugel, N.B. Holland, A. Cattani, L. Moroder, M. Seitz, H.E. Gaub, Science 296 (2002) 1103-1106.
    [23]
    R.P. Feynman, Eng. Sci. 22 (1960) 22-36.
    [24]
    J. N. Tiwari, R.N.T.K. S. Kim, Prog. Mater. Sci. 57 (2012) 724-803.
    [25]
    C. Gogolin, J. Eisert, Rep. Prog. Phys. 79 (2016) 056001
    [26]
    G.M. Wang, E.M. Sevick, E. Mittag, D.J. Searles, D.J. Evans, Phys. Rev. Lett. 89 (2002) 050601.
    [27]
    E.M. Sevick, R.P.S.R. Williams, D.J. Searles, Annu. Rev. Phys. Chem. 59 (2008) 603-633.
    [28]
    K. Shi, K. Gu, Y. Shen, D. Srivastava, E.E. Santiso, K.E. Gubbins, J. Chem. Phys. 148 (2018) 174505.
    [29]
    K.E. Gubbins, Y. Long, M. Sliwinska-Bartkowiak, J. Chem. Thermodyn. 74 (2014) 169-183.
    [30]
    W.A. Steele, Surf. Sci. 36 (1973) 317-352.
    [31]
    R. Radhakrishnan, K.E. Gubbins, M. Sliwinska-Bartkowiak, J. Chem. Phys. 116 (2002) 1147-1155.
    [32]
    S. Zhang, Y. Wang, H. He, F. Huo, Y. Lu, X. Zhang, K. Dong, Green Energy Environ.. 2 (2017) 329-330.
    [33]
    D. Frenkel, Nat. Mater. 14 (2015) 9-12.
    [34]
    M. Planck, Ann. Phys. 309 (1901) 553-563.
    [35]
    P.Pasini, C.Zannoni. Advances in the Computer Simulatons of Liquid Crystals, First ed., Springer, Netherlands, 2000
    [36]
    P.F. Damasceno, Science 337 (2012) 453-457.
    [37]
    K. Kim, K.E. Plass, A.J. Matzger, J. Am. Chem. Soc. 127 (2005) 4879-4887.
    [38]
    C.-A. Palma, J. Bjork, M. Bonini, M.S. Dyer, A. Llanes-Pallas, D. Bonifazi, M. Persson, P. Samori, J. Am. Chem. Soc. 131 (2009) 13062-13071.
    [39]
    J. Bai, X.C. Zeng, Proc. Natl. Acad. Sci. U.S.A. 109 (2012) 21240−21245.
    [40]
    K.B. Jinesh, J.W.M. Frenken, Phys. Rev. Lett. 101 (2008) 036101.
    [41]
    N. Giovambattista, P.J. Rossky, P.G. Debenedetti, Phys. Rev. E 73 (2006) 041604.
    [42]
    S.T. Lin, M. Blanco, W.A. Goddard, J. Chem. Phys. 119 (2003) 11792−11805.
    [43]
    S.T. Lin, P.K. Maiti, W.A. Goddard, J. Phys. Chem. B 114 (2010) 8191−8198.
    [44]
    C. Bustamante, J. Liphardt, F. Ritort, Phys. Today 58 (2005) 43-48.
    [45]
    P.N. Pusey, Science 332 (2011) 802-803.
    [46]
    D.J. Evans, D.J. Searles, Adv. Phys. 51 (2002) 1529-1585.
    [47]
    C. Jarzynski, Annu. Rev. Condens. Matter Phys. 2 (2011) 329-351.
    [48]
    S. Toyabe, T. Okamoto, T. Watanabe-Nakayama, H. Taketani, S. Kudo, E. Muneyuki, Phys. Rev. Lett. 104 (2010) 198103.
    [49]
    S. Toyabe, E. Muneyuki, Biophysics 9 (2013) 91-98.
    [50]
    A.C. Barato, U. Seifert, Phys. Rev. Lett. 114 (2015) 158101.
    [51]
    J.F. Weaver, Science 339 (2013) 39-40.
    [52]
    Y. Li, Green Energy Environ 5 (2020) 4-5.
    [53]
    N.Y.J. Yang, Green Energy Environ 3 (2018) 309.
    [54]
    C.T. Campbell, J.R. Sellers, J. Am. Chem. Soc. 134 (2012) 18109-18115.
    [55]
    F. Binder, L.A. Correa, C. Gogolin, J. Anders, G. Adesso, Thermodynamics in the Quantum Regime, Springer, 2019.
    [56]
    L.D. Rio, J. Aberg, R. Renner, O. Dahlsten, V. Vedral, Nature 474 (2011) 61-63.
    [57]
    L. Masanes, J. Oppenheim, Nat. Commun. 8 (2017) 14538.
    [58]
    F. Brandao, M. Horodecki, J.O. Nelly Ngc, S. Wehner, Proc. Natl. Acad. Sci. U.S.A. 112 (2015) 3275-3279.
    [59]
    M. Horodecki, J. Oppenheim, Nat. Commun. 4 (2013) 2059.
    [60]
    D. Jonathan, M.B. Plenio, Phys. Rev. Lett. 83 (1999) 3566-3569.
    [61]
    M. Planck, Thermodynamik, De Gruyter, 1911.
    [62]
    L.S. Harvey, Phys. Rev. 2 (1970) 2368.
    [63]
    M. Aizenman, L.H. Elliott, J. Stat. Phys. 24 (1981) 279-297.
    [64]
    A. Levy, R. Alicki, R. Kosloff, Phys. Rev. E 85 (2012) 061126
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