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相关论文: On non-Fermi liquid quantum critical points in hea…

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We propose that proximity of the first-order transition manifested by the quantum tricritical point (QTCP) explains non-Fermi-liquid properties of YbRh2Si2. Here, at the QTCP, a continuous phase transition changes into first order at zero…

强关联电子 · 物理学 2008-11-06 Takahiro Misawa , Youhei Yamaji , Masatoshi Imada

In order to understand the non-Fermi-liquid behavior of MnSi under pressure we propose a scenario on the basis of the multispiral state of the magnetic moment. This state can describe the recent critical experiment of the Bragg sphere in…

强关联电子 · 物理学 2009-11-10 O. Narikiyo

Heavy fermion metals typically exhibit unconventional quantum critical point or quantum critical phase at zero temperature due to competition of Kondo effect and magnetism. Previous theories were often based on certain local type of…

强关联电子 · 物理学 2021-10-12 Jiangfan Wang , Yi-feng Yang

We consider the low-energy region of an array of Luttinger liquids coupled by a weak interchain hopping. The leading logarithmic divergences can be re-summed to all orders within a self-consistent perturbative expansion in the hopping, in…

强关联电子 · 物理学 2009-10-31 Enrico Arrigoni

Non-Fermi liquids are strange metals whose physical properties deviate qualitatively from those of conventional metals due to strong quantum fluctuations. In this paper, we report transport measurements on the FeSe$_{1-x}$S$_x$…

Orthogonal metal is a new quantum metallic state that conducts electricity but acquires no Fermi surface (FS) or quasiparticles, and hence orthogonal to the established paradigm of Landau's Fermi-liquid (FL). Such a state may hold the key…

强关联电子 · 物理学 2020-03-31 Chuang Chen , Xiao Yan Xu , Yang Qi , Zi Yang Meng

Physicists are engaged in vigorous debate on the nature of the quantum critical points (QCP) governing the low-temperature properties of heavy-fermion (HF) metals. Recent experimental observations of the much-studied compound YbRh2Si2 in…

强关联电子 · 物理学 2012-12-03 V. R. Shaginyan , A. Z. Msezane , K. G. Popov , J. W. Clark , M. V. Zverev , V. A. Khodel

In this paper, based on the formulation of an O(3) non-linear sigma model, we study the two-dimensional Pi-flux Hubbard model at half-filling. A quantum non-magnetic insulator is explored near the metal-insulator transition that may be a…

强关联电子 · 物理学 2015-04-28 Gao-Yong Sun , Su-Peng Kou

We argue that the gauge-fermion interaction in multiflavour quantum electrodynamics in $(2 + 1)$-dimensions is responsible for non-fermi liquid behaviour in the infrared, in the sense of leading to the existence of a non-trivial (quasi)…

高能物理 - 理论 · 物理学 2009-10-28 I. J. R. Aitchison , N. E. Mavromatos

We demonstrate that nearly critical quantum magnetic fluctuations in strongly correlated electron systems can change the Fermi surface topology and also lead to spin charge separation (SCS) in two dimensions. To demonstrate these effects we…

超导电性 · 物理学 2012-07-23 Michael Holt , Jaan Oitmaa , Wei Chen , Oleg P. Sushkov

We use the semi-classical Boltzmann equation to investigate transport properties such as electrical resistivity, thermal resistivity, thermopower, and the Peltier coefficient of disordered metals close to an antiferromagnetic quantum phase…

强关联电子 · 物理学 2015-05-30 David Nozadze , Thomas Vojta

Stimulated by the small/large Fermi surface controversy in the cuprates we consider a small number of holes injected into the bilayer antiferromagnet. The system has an O(3) quantum critical point (QCP) separating the magnetically ordered…

超导电性 · 物理学 2013-02-27 Michael Holt , Jaan Oitmaa , Wei Chen , Oleg P. Sushkov

The mechanism of strange metal (SM) with unconventional charge transport near magnetic phase transitions has become an outstanding open problem in correlated electron systems. Recently, an exotic quantum critical SM phase was observed in…

强关联电子 · 物理学 2023-01-10 Jiangfan Wang , Yung-Yeh Chang , Chung-Hou Chung

Strongly correlated Fermi systems are among the most intriguing, best experimentally studied and fundamental systems in physics. These are, however, in defiance of theoretical understanding. The ideas based on the concepts like Kondo…

强关联电子 · 物理学 2010-02-22 V. R. Shaginyan , M. Ya. Amusia , K. G. Popov

In this lecture, we review the experimental situation of heavy Fermions with emphasis on the existence of a quantum phase transition (QPT) and related non-Fermi liquid (NFL) effects. We overview the Kondo lattice model (KLM) which is…

强关联电子 · 物理学 2009-09-25 Mireille Lavagna , Catherine Pepin

It is well-known that, generically, the one-dimensional interacting fermions cannot be described in terms of the Fermi liquid. Instead, they present different phenomenology, that of the Tomonaga-Luttinger liquid: the Landau quasiparticles…

强关联电子 · 物理学 2014-05-20 A. V. Rozhkov

In quantum materials, electrons that have strong correlations tend to localize, leading to quantum spins as the building blocks for low-energy physics. When strongly correlated electrons coexist with more weakly-correlated conduction…

强关联电子 · 物理学 2021-09-28 Haoyu Hu , Ang Cai , Lei Chen , Lili Deng , Jedediah H. Pixley , Kevin Ingersent , Qimiao Si

One of the early triumphs of quantum physics is the explanation why some materials are metallic whereas others are insulating. While a treatment based on single electron states correctly predicts the character of most materials this…

强关联电子 · 物理学 2015-09-02 S. Friedemann , H. Chang , M. B. Gamża , P. Reiss , X. Chen , P. Alireza , W. A. Coniglio , D. Graf , S. Tozer , F. M. Grosche

Small changes in an external parameter can often lead to dramatic qualitative changes in the lowest energy quantum mechanical ground state of a correlated electron system. In anisotropic crystals, such as the high temperature…

强关联电子 · 物理学 2009-10-31 Subir Sachdev

Quantum fluctuations and related phase transitions are of current interest from the viewpoint of fundamental physics and technological applications. Quantum phase implies a region where the quantum fluctuations of energy scale $\hbar\omega$…

强关联电子 · 物理学 2021-08-06 Karan Singh , K. Mukherjee , A. M. Jayannavar
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