Dynamical many-body corrections to the residual resistivity of metals

被引:10
作者
Nazarov, V. U. [1 ]
Vignale, G. [2 ]
Chang, Y. -C. [1 ]
机构
[1] Acad Sinica, Res Ctr Appl Sci, Taipei 11529, Taiwan
[2] Univ Missouri, Dept Phys & Astron, Columbia, MO 65211 USA
关键词
DENSITY-FUNCTIONAL THEORY; AL; IMPURITIES; FORMULA;
D O I
10.1103/PhysRevB.89.241108
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The residual resistivity of metals at the absolute zero of temperature is usually understood in terms of electrons scattering from random impurities. This mechanism, however, does not take into account dynamical many-body effects, which cannot be described in terms of a static electron-impurity potential. Here we show that dynamical corrections to the resistivity, already known to play a role in nanoscale conductors, are of quantitative importance in the calculation of the residual resistivity of simple metals, and lead to a significantly improved agreement between theory and experiment in the case of impurities embedded in an Al host. Our calculations are based on a recently proposed form of the time-dependent many-body exchange-correlation potential, which is derived from the time-dependent current density functional theory. Surprisingly, we find that the largest correction to the residual resistivity arises from the real part of the exchange-correlation kernel of time-dependent current density functional theory, rather than from its imaginary part. This unexpected result is shown to be consistent with recent theories of the dynamical corrections to the resistivity of nanoscale conductors.
引用
收藏
页数:5
相关论文
共 50 条
[41]   Optoelectronic properties of monolayer and bilayer AgI: role of many-body interactions [J].
Mehdi Shakourian ;
Hosein Alavi-Rad .
Journal of Computational Electronics, 2023, 22 :96-105
[42]   Training and projecting: A reduced basis method emulator for many-body physics [J].
Bonilla, Edgard ;
Giuliani, Pablo ;
Godbey, Kyle ;
Lee, Dean .
PHYSICAL REVIEW C, 2022, 106 (05)
[43]   On the Role of Charge Transfer in Many-Body Non-Covalent Interactions [J].
Rezac, Jan ;
de la Lande, Aurelien .
CHEMPHYSCHEM, 2023, 24 (18)
[44]   The quantified NTO analysis for the electronic excitations of molecular many-body systems [J].
Li, Jian-Hao ;
Chai, Jeng-Da ;
Guo, Guang-Yu ;
Hayashi, Michitoshi .
CHEMICAL PHYSICS LETTERS, 2011, 514 (4-6) :362-367
[45]   Accurate surface and adsorption energies from many-body perturbation theory [J].
Schimka, L. ;
Harl, J. ;
Stroppa, A. ;
Grueneis, A. ;
Marsman, M. ;
Mittendorfer, F. ;
Kresse, G. .
NATURE MATERIALS, 2010, 9 (09) :741-744
[46]   Optoelectronic properties of monolayer and bilayer AgI: role of many-body interactions [J].
Shakourian, Mehdi ;
Alavi-Rad, Hosein .
JOURNAL OF COMPUTATIONAL ELECTRONICS, 2023, 22 (01) :96-105
[47]   Second-order many-body perturbation study of ice Ih [J].
He, Xiao ;
Sode, Olaseni ;
Xantheas, Sotiris S. ;
Hirata, So .
JOURNAL OF CHEMICAL PHYSICS, 2012, 137 (20)
[48]   Many-body van der Waals interactions in molecules and condensed matter [J].
DiStasio, Robert A., Jr. ;
Gobre, Vivekanand V. ;
Tkatchenko, Alexandre .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2014, 26 (21)
[49]   The Hubbard dimer: a density functional case study of a many-body problem [J].
Carrascal, D. J. ;
Ferrer, J. ;
Smith, J. C. ;
Burke, K. .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2015, 27 (39)
[50]   Comparing many-body approaches against the helium atom exact solution [J].
Li, Jing ;
Drummond, N. D. ;
Schuck, Peter ;
Olevano, Valerio .
SCIPOST PHYSICS, 2019, 6 (04)