International Center for Quantum Materials, School of Physics, Peking University, 100871, Beijing, China.
Shenzhen Institute for Quantum Science and Engineering and Department of Physics, Southern University of Science and Technology, 518055, Shenzhen, China.
Nat Commun. 2019 Mar 4;10(1):1028. doi: 10.1038/s41467-019-09012-4.
Detecting the spectroscopic signatures of relativistic quasiparticles in emergent topological materials is crucial for searching their potential applications. Magnetometry is a powerful tool for fathoming electrons in solids, by which a clear method for discerning relativistic quasiparticles has not yet been established. Adopting the probes of magnetic torque and parallel magnetization for the archetype Weyl semimetal TaAs in strong magnetic field, we observed a quasi-linear field dependent effective transverse magnetization and a non-saturating parallel magnetization when the system enters the quantum limit. Distinct from the saturating magnetic responses for non-relativistic quasiparticles, the non-saturating signals of TaAs in strong field is consistent with our newly developed magnetization calculation for a Weyl fermion system in an arbitrary angle. Our results establish a high-field thermodynamic method for detecting the magnetic response of relativistic quasiparticles in topological materials.
探测新兴拓扑材料中相对论准粒子的光谱特征对于探索其潜在应用至关重要。磁强计是研究固体中电子的有力工具,但尚未建立明确的方法来辨别相对论准粒子。我们采用磁场中的磁转矩和平行磁化探针研究原型 Weyl 半金属 TaAs,当系统进入量子极限时,观察到有效横向磁化率的准线性场依赖性和非饱和平行磁化率。与非相对论准粒子的饱和磁响应不同,强磁场中 TaAs 的非饱和信号与我们新开发的任意角度 Weyl 费米子系统的磁化率计算结果一致。我们的结果为探测拓扑材料中相对论准粒子的磁响应建立了一种高温热力学方法。