量子临界点
费米液体理论
凝聚态物理
物理
量子相变
重整化群
近藤效应
反铁磁性
强相关材料
量子力学
量子
近藤模型
相变
电阻率和电导率
超导电性
电子
作者
Yung-Yeh Chang,S. Paschen,Chung‐Hou Chung
出处
期刊:Physical review
[American Physical Society]
日期:2018-01-26
卷期号:97 (3)
被引量:8
标识
DOI:10.1103/physrevb.97.035156
摘要
Unconventional metallic or strange metal (SM) behavior with non-Fermi liquid (NFL) properties, generic features of heavy-fermion systems near quantum phase transitions, are yet to be understood microscopically. A paradigmatic example is the magnetic field-tuned quantum critical heavy-fermion metal ${\mathrm{YbRh}}_{2}{\mathrm{Si}}_{2}$, revealing a possible SM state over a finite range of fields at low temperatures when substituted with Ge. Above a critical field, the SM state gives way to a heavy Fermi liquid with Kondo correlation. The NFL behavior, most notably a linear-in-temperature electrical resistivity and a logarithmic-in-temperature followed by a power-law singularity in the specific heat coefficient at low temperatures, still lacks a definite understanding. We propose the following mechanism as origin of the experimentally observed behavior: a quasi-$2d$ fluctuating short-ranged resonating-valence-bond spin liquid competing with the Kondo correlation. Applying a field-theoretical renormalization group analysis on an effective field theory beyond a large-$N$ approach to an antiferromagnetic Kondo-Heisenberg model, we identify the critical point and explain remarkably well the SM behavior. Our theory goes beyond the well-established framework of quantum phase transitions and serves as a basis to address open issues in quantum critical heavy-fermion systems.
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