Reconciling strange metal transport in CeCoIn5 through the difference of optical and cyclotron effective masses

成果类型:
Article
署名作者:
Wang, Jingyuan; Tagay, Zhenisbek; Shi, Liyu; Liang, Jiahao; Duong, Nghiep Khoan; Wu, Yi; Vianez, Pedro Manuel Trocado; Ronning, Filip; Rickel, Dwight G.; Schlom, Darrell G.; Shen, Kyle M.; Crooker, Scott A.; Armitage, N. P.
署名单位:
United States Department of Energy (DOE); Los Alamos National Laboratory; Johns Hopkins University; Cornell University; United States Department of Energy (DOE); Los Alamos National Laboratory; Cornell University; Leibniz Association; Leibniz Institut fur Kristallzuchtung (IKZ); Canadian Institute for Advanced Research (CIFAR)
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2614197123
发表日期:
2026-09-01
页码:
e2614197123
关键词:
Strange metal heavy fermion material time-domain terahertz spectroscopy memory function resonance superconductivity electrons EVOLUTION systems
摘要:
The strange metal behavior in cuprate superconductors-characterized by linear in temperature resistivity and anomalous Hall transport-stands in stark contrast to the expectation of conventional Fermi liquid (FL) theory. Remarkably, the similar transport behavior has also been observed in the heavy fermion metal CeCoIn5, whose d-wave superconducting ground state and strong antiferromagnetic fluctuations draw parallels to the cuprates. Here we have investigated the optical conductivity of the strange metal state of CeCoIn5 over a wide magnetic field range using time-domain THz spectroscopy. Using unique high-field THz spectroscopy we have shown that the current relaxation rate scales approximately as T2, giving evidence for a hidden Fermi liquid state over a large field range. This result can be reconciled with linear in T resistivity with the realization that heavy quasiparticles have an optical mass that becomes very enhanced at low T. This optical mass contrasts with the mass that characterizes cyclotron motion, which does not suffer the same large temperature-dependent renormalization. Although by itself anomalous, this allows one to understand a number of other phenomena in CeCoIn5 that have been taken to be signatures of strange metals, including the coexistence of a conventional T2 dependence of the cotangent of the Hall angle with the linear in T resistivity, which with our observation also reflects FL-like physics.
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