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The interplay between superconductivity and non-Fermi liquid at a quantum-critical point in a metal

机译:超导性和非费米液体在金属中量子临界点之间的相互作用

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摘要

Near a quantum-critical point, a metal reveals two competing tendencies: destruction of fermionic coherence and attraction in one or more pairing channels. We analyze the competition within Eliashberg theory for a class of quantum-critical models with an effective dynamical electron-electron interaction V(Omega(m)) proportional to 1/vertical bar Omega(m)vertical bar(gamma) (the gamma-model) for 0 < gamma < 1. We argue that the two tendencies are comparable in strength, yet the one towards pairing is stronger, and the ground state is a superconductor. We show, however, that there exist two distinct regimes of system behavior below the onset temperature of the pairing T-p. In the range T-cross < T < T-p fermions remain incoherent and the spectral function A(k, omega) and the density of states N(omega) both display "gap filling" behavior in which, i.e., the position of the maximum in N(omega) is set by temperature rather than the pairing gap. At lower T < T-cross, fermions acquire coherence, and A(k, omega) and N(o) display conventional "gap closing" behavior, when the peak position in N(omega) scales with the gap and shifts to a smaller value as T increases. We argue that the existence of the two regimes comes about because of special behavior of fermions with frequencies omega = +/-pi T along the Matsubara axis. Specifically, for these fermions, the component of the self-energy, which competes with the pairing, vanishes in the normal state. We further argue that the crossover at T similar to T-cross comes about because Eliashberg equations allow an infinite number of topologically distinct solutions for the onset temperature of the pairing within the same gap symmetry. Only one solution, with the highest T-p, actually emerges, but other solutions are generated and modify the form of the gap function at T <= T-cross. Finally, we argue that the actual T-c is comparable to T-cross, while at T-cross < T < T-p phase fluctuations destroy superconducting long-range order, and the system displays a pseudogap behavior. (C) 2020 Elsevier Inc. All rights reserved.
机译:None

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  • 来源
    《Annals of Physics》 |2020年第1期|共23页
  • 作者单位

    Univ Minnesota Sch Phys &

    Astron Minneapolis MN 55455 USA;

    Texas A&

    M Univ Dept Phys College Stn TX 77843 USA;

    Univ Florida Dept Phys Gainesville FL 32611 USA;

    Univ Minnesota Sch Phys &

    Astron Minneapolis MN 55455 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理学;
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