双层
凝聚态物理
图像扭曲
三角晶系
迪拉克费米子
格子(音乐)
电子
蜂巢
材料科学
物理
纳米技术
化学
结晶学
石墨烯
晶体结构
膜
量子力学
生物化学
人工智能
计算机科学
声学
复合材料
作者
Weizhen Meng,Hongbo Wu,Yalong Jiao,Fengxian Ma,Shiyao Wang,Ying Liu,Guodong Liu,Xiaoming Zhang
出处
期刊:Small
[Wiley]
日期:2023-12-10
卷期号:20 (20)
被引量:1
标识
DOI:10.1002/smll.202309962
摘要
Abstract Emergent fermions arising from the excess electrons of electrides provide a new perspective for exploring semimetal states with unique Fermi surface geometries. In this study, a class of unique two‐dimensional (2D) highly anisotropic Dirac fermions is designed using a sandwich structure. Based on the structural design and first‐principles calculations, 2D electride MB (M = Ca/Sr, B = Cl/Br/I) is an ideal candidate material. The excess electrons of the bilayer MB could be stably localized in the interstitial cavities, constructing a natural zigzag honeycomb electron sublattice that further forms a Dirac fermion. Compared with traditional Dirac semimetals, 2D Dirac electrides exhibited rich physical properties: i) The Fermi surface shows trigonal warping in low‐energy regions. In particular, the geometry of the Fermi surface determines the high anisotropy of the Fermi velocity. ii) A pair of Dirac fermions are protected by three‐fold rotational symmetry and exhibit strong robustness. iii) Electride MB possesses a lower work function that strongly correlates with the surface area of the emission channel. Based on these properties, an electron‐emitting device with multifunctional applications is fabricated. Therefore, this study provides an ideal platform for studying potential entanglement between structures, electrides, and topological states.
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