Strongly correlated Fermi systems as a new state of matter

被引:4
|
作者
Shaginyan, V. R. [1 ,2 ]
Msezane, A. Z. [2 ]
Japaridze, G. S. [2 ]
Popov, K. G. [3 ]
Khodel, V. A. [4 ,5 ,6 ]
机构
[1] NRC Kurchatov Inst, Petersburg Nucl Phys Inst, Gatchina 188300, Russia
[2] Clark Atlanta Univ, Atlanta, GA 30314 USA
[3] RAS, Komi Sci Ctr, Ural Div, Syktyvkar 167982, Russia
[4] Russian Res Ctr Kurchatov Inst, Moscow 123182, Russia
[5] Washington Univ, McDonnell Ctr Space Sci, St Louis, MO 63130 USA
[6] Washington Univ, Dept Phys, St Louis, MO 63130 USA
基金
俄罗斯科学基金会;
关键词
quantum phase transition; flat bands; non-Fermi-liquid states; strongly correlated electron systems; quantum spin liquids; heavy fermions; quasicrystals; thermoelectric and thermomagnetic effects; scaling behavior; new state of matter; QUANTUM CRITICAL-POINT; ZERO-TEMPERATURE LIMIT; SPIN-LIQUID; PHASE-TRANSITION; MAGNETIC-FIELDS; METAL YBRH2SI2; ENERGY SCALES; HEAVY; BEHAVIOR; CRITICALITY;
D O I
10.1007/s11467-016-0608-0
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The aim of this review paper is to expose a new state of matter exhibited by strongly correlated Fermi systems represented by various heavy-fermion (HF) metals, two-dimensional liquids like 3 He, compounds with quantum spin liquids, quasicrystals, and systems with one-dimensional quantum spin liquid. We name these various systems HF compounds, since they exhibit the behavior typical of HF metals. In HF compounds at zero temperature the unique phase transition, dubbed throughout as the fermion condensation quantum phase transition (FCQPT) can occur; this FCQPT creates flat bands which in turn lead to the specific state, known as the fermion condensate. Unlimited increase of the effective mass of quasiparticles signifies FCQPT; these quasiparticles determine the thermodynamic, transport and relaxation properties of HF compounds. Our discussion of numerous salient experimental data within the framework of FCQPT resolves the mystery of the new state of matter. Thus, FCQPT and the fermion condensation can be considered as the universal reason for the non-Fermi liquid behavior observed in various HF compounds. We show analytically and using arguments based completely on the experimental grounds that these systems exhibit universal scaling behavior of their thermodynamic, transport and relaxation properties. Therefore, the quantum physics of different HF compounds is universal, and emerges regardless of the microscopic structure of the compounds. This uniform behavior allows us to view it as the main characteristic of a new state of matter exhibited by HF compounds.
引用
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页数:22
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