Wuhan National High Magnetic Field Center and School of Physics, Huazhong University of Science and Technology, Wuhan 430074, People's Republic of China.
Laboratoire de Physique et Etude des Matériaux (CNRS/UPMC), Ecole Supérieure de Physique et de Chimie Industrielles, 10 Rue Vauquelin, 75005 Paris, France.
J Phys Condens Matter. 2023 Jun 20;35(37). doi: 10.1088/1361-648X/acdcd9.
CoSnSis believed to be a magnetic Weyl semimetal. It displays large anomalous Hall, Nernst and thermal Hall effects with a remarkably large anomalous Hall angle. Here, we present a comprehensive study of how substituting Co by Fe or Ni affects the electrical and thermoelectric transport. We find that doping alters the amplitude of the anomalous transverse coefficients. The maximum decrease in the amplitude of the low-temperature anomalous Hall conductivityσijAis twofold. Comparing our results with theoretical calculations of the Berry spectrum assuming a rigid shift of the Fermi level, we find that given the modest shift in the position of the chemical potential induced by doping, the experimentally observed variation occurs five times faster than expected. Doping affects the amplitude and the sign of the anomalous Nernst coefficient. Despite these drastic changes, the amplitude of theαijA/σijAratio at the Curie temperature remains close to≈0.5kB/e, in agreement with the scaling relationship observed across many topological magnets.
CoSnSis 被认为是一种磁性 Weyl 半金属。它表现出大的反常 Hall、Nernst 和热 Hall 效应,具有非常大的反常 Hall 角。在这里,我们全面研究了 Co 被 Fe 或 Ni 取代如何影响电输运和热电输运。我们发现掺杂改变了反常横向系数的幅度。低温反常 Hall 电导率σijA的幅度最大减小了两倍。将我们的结果与假设费米能级刚性移动的 Berry 谱的理论计算进行比较,我们发现,考虑到掺杂引起的化学势位置的适度移动,实验观察到的变化速度比预期快五倍。掺杂影响反常 Nernst 系数的幅度和符号。尽管发生了这些剧烈的变化,但居里温度下的αijA/σijAratio 幅度仍接近≈0.5kB/e,与在许多拓扑磁体中观察到的标度关系一致。