反铁磁性
凝聚态物理
各向异性
磁化
磁电阻
等结构
基态
物理
磁各向异性
联轴节(管道)
电子能带结构
电子结构
材料科学
结晶学
化学
磁场
晶体结构
原子物理学
量子力学
冶金
作者
Zhicheng Wang,Emily Been,Jonathan Gaudet,Gadeer Alqasseri,Kyle Fruhling,Xiaohan Yao,U. Stuhr,Qinqing Zhu,Zhi Ren,Yi Cui,Chunjing Jia,Brian Moritz,Sugata Chowdhury,Thomas Devereaux,Fazel Tafti
出处
期刊:Physical review
[American Physical Society]
日期:2022-04-14
卷期号:105 (16)
被引量:21
标识
DOI:10.1103/physrevb.105.165122
摘要
Several recent studies have shown that the anisotropy in the magnetic structure of \ECA\ plays a significant role in stabilizing the Weyl nodes. To investigate the relationship between magnetic anisotropy and Weyl physics, we present a comparative study between EuZn$_2$As$_2$ and EuCd$_2$As$_2$ that are isostructural but with different magnetic anisotropy. We performed structural analysis, electronic transport, and magnetization experiments on millimeter-sized single crystals of EuZn$_2$As$_2$, and compared the results to those of EuCd$_2$As$_2$. By combining the first principle calculations and neutron diffraction experiment, we identify the magnetic ground state of EuZn$_2$As$_2$ as A-type antiferromagnetic order with a transition temperature ($T_\mathrm{N}$ = 19.6 K) twice that of EuCd$_2$As$_2$. Like EuCd$_2$As$_2$, the negative magnetoresistance of EuZn$_2$As$_2$ is observed after suppressing the resistivity peak at $T_\mathrm{N}$ with increasing fields. However, the anisotropy in both transport and magnetization are much reduced in EuZn$_2$As$_2$. The difference could be ascribed to the weaker spin-orbit coupling, more localized $d$-orbitals, and a larger contribution from the Eu $s$-orbitals in the zinc compound, as suggested by the electronic band calculations. The same band structure effect could be also responsible for the observation of a smaller non-linear anomalous Hall effect in EuZn$_2$As$_2$ compared to EuCd$_2$As$_2$.
科研通智能强力驱动
Strongly Powered by AbleSci AI