徐刚

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Personal information

教授     博士生导师     硕士生导师

性别:男

在职信息:在职

所在单位:国家脉冲强磁场科学中心

学历:研究生(博士)毕业

学位:理学博士学位

毕业院校:中国科学院研究生院

学科:凝聚态物理
曾获荣誉:
2020    2019年度物理学院最受学生喜爱任课教师
2018    “2018年度中国科学院杰出科技成就奖(集体)”

Electronic correlations and flattened band in magnetic Weyl semimetal candidate Co3Sn2S2
发布时间:2023-09-07  点击次数:

论文类型:期刊论文
第一作者:Yueshan Xu
通讯作者:Zhi-Guo Chen
合写作者:Jianlin Luo,Youguo Shi,Hechang Lei,Alexey A. Soluyanov,Ling Lu,Gang Xu,Enke Liu,Luyang Wang,Xiaolei Hu,Yilin Wang,Qiangwei Yin,Qi Wang,Changjiang Yi,Jianzhou Zhao
发表刊物:Nature Communications
收录刊物:SCI
学科门类:理学
一级学科:物理学
文献类型:J
卷号:11
期号:1
页面范围:3985
ISSN号:2041-1723
发表时间:2020-08-10
影响因子:14.919
摘要:The interplay between electronic correlations and topological protection may offer a rich avenue for discovering emergent quantum phenomena in condensed matter. However, electronic correlations have so far been little investigated in Weyl semimetals (WSMs) by experiments. Here, we report a combined optical spectroscopy and theoretical calculation study on the strength and effect of electronic correlations in a magnet Co3Sn2S2. The electronic kinetic energy estimated from our optical data is about half of that obtained from single-particle ab initio calculations in the ferromagnetic ground state, which indicates intermediate-strength electronic correlations in this system. Furthermore, comparing the energy and side-slope ratios between the interband-transition peaks at high energies in the experimental and single-particle-calculation-derived optical conductivity spectra with the bandwidth-renormalization factors obtained by many-body calculations enables us to estimate the Coulomb-interaction strength (U ∼ 4 eV) in Co3Sn2S2. Besides, a sharp experimental optical conductivity peak at low energy, which is absent in the single-particle-calculation-derived spectrum but is consistent with the optical conductivity peaks obtained by many-body calculations with U ∼ 4 eV, indicates that an electronic band connecting the two Weyl cones is flattened by electronic correlations and emerges near the Fermi energy in Co3Sn2S2. Our work paves the way for exploring flat-band-generated quantum phenomena in WSMs.