点反射
物理
单层
凝聚态物理
望远镜
费米能级
联轴节(管道)
对称(几何)
节的
自旋(空气动力学)
Dirac(视频压缩格式)
迪拉克费米子
自旋轨道相互作用
费米子
量子力学
材料科学
几何学
纳米技术
数学
热力学
解剖
冶金
医学
中微子
电子
作者
Wen-Rong Liu,Liang Zhang,Xiao-Jing Dong,Wei-xiao Ji,Pei‐ji Wang,Changwen Zhang
标识
DOI:10.1088/1674-1056/ac4cba
摘要
The two-dimensional (2D) materials with nodal line band crossing have been attracting great research interest. However, it remains a challenge to find high-stable nodal line structure in 2D systems. Herein, based on the first-principles calculations and theoretical analysis, we propose that monolayer B 6 O possesses symmetry protected Dirac nodal line (DNL) state, with its Fermi velocity of 10 6 m/s in the same order of magnitude as that of graphene. The origin of DNL fermions is induced by coexistence of time-reversal symmetry and inversion symmetry. A two-band tight-binding model is further given to understand the mechanism of DNL. Considering its robustness against spin–orbit coupling (SOC) and high structural stability, these results suggest monolayer B 6 O as a new platform for realizing future high-speed low-dissipation devices.
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