Going beyond Landauer scattering theory to describe spatially resolved nonlocal heating and cooling in quantum thermoelectrics

被引:0
作者
Leumer, Nico G. [1 ,2 ]
Basko, Denis M. [3 ]
Jalabert, Rodolfo A. [1 ]
Weinmann, Dietmar [1 ]
Whitney, Robert S. [3 ]
机构
[1] Univ Strasbourg, CNRS, UMR 7504, Inst Phys & Chim Materiaux Strasbourg, F-67000 Strasbourg, France
[2] Donostia Int Phys Ctr DIPC, E-20018 San Sebastian, Spain
[3] Univ Grenoble Alpes, CNRS, LPMMC, F-38000 Grenoble, France
关键词
SCANNING THERMAL MICROSCOPY; DISSIPATION; TRANSPORT; FORMULA;
D O I
10.1103/PhysRevB.110.245402
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Spatially resolved heating and cooling in nanostructures is nowadays measured with various nanoscale thermometry techniques, including scanning thermometry. Yet, the most commonly used theory of nanoscale heating and thermoelectricity, Landauer scattering theory, is not appropriate to model such measurements. Hence, we analyze a minimal model of spatially resolved heat transfer between electrons and phonons in simple thermoelectric nanostructures. This combines Landauer scattering formalism with a Boltzmann equation for transport, revealing the nonlocality of Joule heating and Peltier cooling induced by a scatterer in a nanowire. The corresponding heating or cooling of the phonons is caused by the voltage drop at the scatterer, but is often maximal at a certain distance from the scatterer. This distance is of the order of the electron-phonon scattering length. Scanning thermal microscopy, such as SQUID-on-tip thermometers, should detect this nonlocality as phonon hot spots and cold spots, spatially separated from the scatterer. We provide physical arguments explaining the thermoelectric response of the combined system of wire and scatterer and, in particular, why the resulting heating and cooling is sometimes the opposite to that predicted by the standard Landauer scattering theory.
引用
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页数:18
相关论文
共 55 条
  • [1] Abrikosov AA, 2017, Fundamentals of the theory of metals
  • [2] Demonstration of high-impedance superconducting NbRe Dayem bridges
    Battisti, S.
    Koch, J.
    Paghi, A.
    Ruf, L.
    Gulian, A.
    Teknowijoyo, S.
    Cirillo, C.
    Kakhaki, Z. Makhdoumi
    Attanasio, C.
    Scheer, E.
    Di Bernardo, A.
    De Simoni, G.
    Giazotto, F.
    [J]. APPLIED PHYSICS LETTERS, 2024, 124 (17)
  • [3] Fundamental aspects of steady-state conversion of heat to work at the nanoscale
    Benenti, Giuliano
    Casati, Giulio
    Saito, Keiji
    Whitney, Robert S.
    [J]. PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 2017, 694 : 1 - 124
  • [4] Asymmetric power dissipation in electronic transport through a quantum point contact
    Blaas-Anselmi, Carmen
    Helluin, Felix
    Jalabert, Rodolfo A.
    Weick, Guillaume
    Weinmann, Dietmar
    [J]. SCIPOST PHYSICS, 2022, 12 (03):
  • [5] THERMAL AND ELECTRICAL TRANSPORT FORMALISM FOR ELECTRONIC MICROSTRUCTURES WITH MANY TERMINALS
    BUTCHER, PN
    [J]. JOURNAL OF PHYSICS-CONDENSED MATTER, 1990, 2 (22) : 4869 - 4878
  • [6] 4-TERMINAL PHASE-COHERENT CONDUCTANCE
    BUTTIKER, M
    [J]. PHYSICAL REVIEW LETTERS, 1986, 57 (14) : 1761 - 1764
  • [7] Datta S., 1995, Electronic Transport in Mesoscopic Systems, DOI [DOI 10.1017/CBO9780511805776, 10.1017/CBO9780511805776]
  • [8] DEFINITION AND MEASUREMENT OF THE ELECTRICAL AND THERMAL RESISTANCES
    ENGQUIST, HL
    ANDERSON, PW
    [J]. PHYSICAL REVIEW B, 1981, 24 (02): : 1151 - 1154
  • [9] GENERALIZATION OF THE LANDAUER CONDUCTANCE FORMULA
    ERANEN, S
    SINKKONEN, J
    [J]. PHYSICAL REVIEW B, 1987, 35 (05): : 2222 - 2227
  • [10] Thermal dissipation in the quantum Hall regime in graphene
    Fang, Jing-Yun
    Yang, Ning-Xuan
    Yan, Qing
    Guo, Ai-Min
    Sun, Qing-Feng
    [J]. PHYSICAL REVIEW B, 2021, 104 (11)