The Andreev conductance in superconductor–insulator–normal metal structures
- 作者: Seliverstov A.V.1,2,3, Tarasov M.A.4, Edel’man V.S.1
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隶属关系:
- Kapitza Institute for Physical Problems
- Moscow Institute of Physics and Technology (State University)
- Laboratory of Solid-State Physics and Magnetism
- Kotel’nikov Institute of Radio Engineering and Electronics
- 期: 卷 124, 编号 4 (2017)
- 页面: 643-656
- 栏目: Electronic Properties of Solid
- URL: https://journals.rcsi.science/1063-7761/article/view/192107
- DOI: https://doi.org/10.1134/S1063776117030153
- ID: 192107
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The Andreev subgap conductance at 0.08–0.2 K in thin-film superconductor (aluminum)–insulator–normal metal (copper, hafnium, or aluminum with iron-sublayer-suppressed superconductivity) structures is studied. The measurements are performed in a magnetic field oriented either along the normal or in the plane of the structure. The dc current–voltage (I–U) characteristics of samples are described using a sum of the Andreev subgap current dominating in the absence of the field at bias voltages U < (0.2–0.4)Δc/e (where Δc is the energy gap of the superconductor) and the single-carrier tunneling current that predominates at large voltages. To within the measurement accuracy of 1–2%, the Andreev current corresponds to the formula \({I_n} + {I_s} = {K_n}\tanh \left( {{{eU} \mathord{\left/ {\vphantom {{eU} {2k{T_{eff}}}}} \right. \kern-\nulldelimiterspace} {2k{T_{eff}}}}} \right) + {K_s}{{\left( {{{eU} \mathord{\left/ {\vphantom {{eU} {{\Delta _c}}}} \right. \kern-\nulldelimiterspace} {{\Delta _c}}}} \right)} \mathord{\left/ {\vphantom {{\left( {{{eU} \mathord{\left/ {\vphantom {{eU} {{\Delta _c}}}} \right. \kern-\nulldelimiterspace} {{\Delta _c}}}} \right)} {\sqrt {1 - {{eU} \mathord{\left/ {\vphantom {{eU} {{\Delta _c}}}} \right. \kern-\nulldelimiterspace} {{\Delta _c}}}} }}} \right. \kern-\nulldelimiterspace} {\sqrt {1 - {{eU} \mathord{\left/ {\vphantom {{eU} {{\Delta _c}}}} \right. \kern-\nulldelimiterspace} {{\Delta _c}}}} }}\) following from a theory that takes into account mesoscopic phenomena with properly selected effective temperature Teff and the temperature- and fieldindependent parameters Kn and Ks (characterizing the diffusion of electrons in the normal metal and superconductor, respectively). The experimental value of Kn agrees in order of magnitude with the theoretical prediction, while Ks is several dozen times larger than the theoretical value. The values of Teff in the absence of the field for the structures with copper and hafnium are close to the sample temperature, while the value for aluminum with an iron sublayer is several times greater than this temperature. For the structure with copper at T = 0.08–0.1 K in the magnetic field B|| = 200–300 G oriented in the plane of the sample, the effective temperature Teff increases to 0.4 K, while that in the perpendicular (normal) field B⊥ ≈ 30 G increases to 0.17 K. In large fields, the Andreev conductance cannot be reliably recognized against the background of single- carrier tunneling current. In the structures with hafnium and in those with aluminum on an iron sublayer, the influence of the magnetic field is not observed.
作者简介
A. Seliverstov
Kapitza Institute for Physical Problems; Moscow Institute of Physics and Technology (State University); Laboratory of Solid-State Physics and Magnetism
Email: vsedelman@yandex.ru
俄罗斯联邦, Moscow, 119334; Dolgoprudnyi, Moscow oblast, 141701; KU Leuven, BE-30001
M. Tarasov
Kotel’nikov Institute of Radio Engineering and Electronics
Email: vsedelman@yandex.ru
俄罗斯联邦, Moscow, 125009
V. Edel’man
Kapitza Institute for Physical Problems
编辑信件的主要联系方式.
Email: vsedelman@yandex.ru
俄罗斯联邦, Moscow, 119334
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