Weyl半金属
凝聚态物理
铁磁性
霍尔效应
半金属
物理
自旋霍尔效应
μ介子自旋谱学
自旋(空气动力学)
磁场
量子力学
电子
自旋极化
带隙
超导电性
热力学
作者
Ola Kenji Forslund,Xiaoxiong Liu,Soohyeon Shin,Chun Lin,Masafumi Horio,Qisi Wang,Kevin Kramer,S. Mukherjee,T. K. Kim,Céphise Cacho,Chennan Wang,Tian Shang,Victor Ukleev,J. S. White,Pascal Puphal,Yasmine Sassa,E. Pomjakushina,Titus Neupert,J. Chang
标识
DOI:10.1103/physrevlett.134.126602
摘要
The anomalous Hall effect (AHE) has emerged as a key indicator of time-reversal symmetry breaking (TRSB) and topological features in electronic band structures. Absent of a magnetic field, the AHE requires spontaneous TRSB but has proven hard to probe due to averaging over domains. The anomalous component of the Hall effect is thus frequently derived from extrapolating the magnetic field dependence of the Hall response. We show that discerning whether the AHE is an intrinsic property of the field-free system becomes intricate in the presence of strong magnetic fluctuations. As a study case, we use the Weyl semimetal PrAlGe, where TRSB can be toggled via a ferromagnetic transition, providing a transparent view of the AHE’s topological origin. Through a combination of thermodynamic, transport, and muon spin relaxation measurements, we contrast the behavior below the ferromagnetic transition temperature to that of strong magnetic fluctuations above. Our results on PrAlGe provide general insights into the interpretation of anomalous Hall signals in systems where TRSB is debated, such as families of kagome metals or certain transition metal dichalcogenides. Published by the American Physical Society 2025
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