Ultra-flat bands at large twist angles in group-V twisted bilayer materials

扭转 双层 双层石墨烯 材料科学 带隙 平坦度(宇宙学) 凝聚态物理 光学 光电子学 几何学 物理 纳米技术 石墨烯 数学 化学 量子力学 生物化学 宇宙学
作者
Zhi-Xiong Que,Shu-Zong Li,Bo Huang,Zhixiong Yang,Wei‐Bing Zhang
出处
期刊:Journal of Chemical Physics [American Institute of Physics]
卷期号:160 (19) 被引量:1
标识
DOI:10.1063/5.0197757
摘要

Flat bands in 2D twisted materials are key to the realization of correlation-related exotic phenomena. However, a flat band often was achieved in the large system with a very small twist angle, which enormously increases the computational and experimental complexity. In this work, we proposed group-V twisted bilayer materials, including P, As, and Sb in the β phase with large twist angles. The band structure of twisted bilayer materials up to 2524 atoms has been investigated by a deep learning method DeepH, which significantly reduces the computational time. Our results show that the bandgap and the flat bandwidth of twisted bilayer β-P, β-As, and β-Sb reduce gradually with the decreasing of twist angle, and the ultra-flat band with bandwidth approaching 0 eV is achieved. Interestingly, we found that a twist angle of 9.43° is sufficient to achieve the band flatness for β-As comparable to that of twist bilayer graphene at the magic angle of 1.08°. Moreover, we also find that the bandgap reduces with decreasing interlayer distance while the flat band is still preserved, which suggests interlayer distance as an effective routine to tune the bandgap of flat band systems. Our research provides a feasible platform for exploring physical phenomena related to flat bands in twisted layered 2D materials.
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