Transport Properties of Strongly Correlated Fermi Systems

IF 2.2 3区 综合性期刊 Q2 MULTIDISCIPLINARY SCIENCES Symmetry-Basel Pub Date : 2023-11-13 DOI:10.3390/sym15112055
Vasily R. Shaginyan, Alfred Z. Msezane, Mikhail V. Zverev
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Abstract

Physicists are actively debating the nature of the quantum critical phase transition that determines the low-temperature properties of metals with heavy fermions. Important experimental observations of their transport properties incisively probe the nature of the quantum critical phase transition. In our short review, we consider the transport properties of strongly correlated Fermi systems like heavy fermion metals and high—Tc superconductors. Their transport properties are defined by strong inter-particle interactions, forming flat bands in these compounds. These properties do not coincide with those of conventional metals. Indeed, in contrast to the behavior of the transport properties of conventional metals, the strongly correlated compounds exhibit linear temperature resistivity ρ(T)∝T. We analyze the magnetoresistance and show that under the application of the magnetic field, it becomes negative. It is shown that near a quantum phase transition, when the density of the electronic states diverges, semiclassical physics remains applicable to describe the resistivity ρ of strongly correlated metals due to the presence of a transverse zero-sound collective mode, representing the phonon mode in solids. We demonstrate that when T exceeds the extremely low Debye temperature TD, the resistivity ρ(T) changes linearly with T since the mechanism of formation of the T-dependence ρ(T) is a similar electron-phonon mechanism, which predominates at high temperatures in ordinary metals. Thus, in the region of T-linear resistance, electron-phonon scattering leads to a lifetime of τ quasiparticles practically independent of the material, which is expressed as the ratio of the Planck constant ℏ to the Boltzmann constant kB, Tτ∼ℏ/kB. We explain that due to the non-Fermi-liquid behavior, the real part of the frequency-dependent optical conductivity σoptR(ω) exhibits a scaling behavior and demonstrates the unusual power law behavior σoptR(ω)∝ω−1, rather than the well-known one shown by conventional metals, σoptR(ω)∝ω−2. All our theoretical considerations are illustrated and compared with the corresponding experimental facts. Our results are in a good agreement with experimental observations.
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强相关费米系统的输运性质
物理学家们正在积极讨论量子临界相变的本质,它决定了重费米子金属的低温特性。对它们输运性质的重要实验观察深刻地探究了量子临界相变的本质。在我们的简短回顾中,我们考虑了重费米子金属和高tc超导体等强相关费米系统的输运性质。它们的输运性质由强粒子间相互作用决定,在这些化合物中形成平带。这些性质与传统金属的性质不同。事实上,与传统金属的输运性质相反,强相关化合物表现出线性温度电阻率ρ(T)∝T。我们分析了磁电阻,发现在磁场的作用下,它变成了负的。结果表明,在量子相变附近,当电子态密度发散时,由于存在横向零声集体模式(代表固体中的声子模式),半经典物理仍然适用于描述强相关金属的电阻率ρ。我们证明,当T超过极低的德拜温度TD时,电阻率ρ(T)随T线性变化,因为与T相关的ρ(T)的形成机制类似于电子-声子机制,在普通金属的高温下占主导地位。因此,在t -线性电阻区,电子-声子散射导致τ准粒子的寿命几乎与材料无关,其表示为普朗克常数和玻尔兹曼常数kB的比值,Tτ ~ θ /kB。我们解释说,由于非费米液体行为,频率相关光电导率的实部σoptR(ω)表现出标度行为,并表现出不寻常的幂律行为σoptR(ω)∝ω−1,而不是传统金属所表现出的众所周知的幂律行为σoptR(ω)∝ω−2。我们所有的理论考虑都加以说明,并与相应的实验事实进行了比较。我们的结果与实验观察结果很吻合。
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来源期刊
Symmetry-Basel
Symmetry-Basel MULTIDISCIPLINARY SCIENCES-
CiteScore
5.40
自引率
11.10%
发文量
2276
审稿时长
14.88 days
期刊介绍: Symmetry (ISSN 2073-8994), an international and interdisciplinary scientific journal, publishes reviews, regular research papers and short notes. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible. There is no restriction on the length of the papers. Full experimental and/or methodical details must be provided, so that results can be reproduced.
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