Que Zhi-Xiong, Li Shu-Zong, Huang Bo, Yang Zhi-Xiong, Zhang Wei-Bing
Hunan Provincial Key Laboratory of Flexible Electronic Materials Genome Engineering, School of Physics and Electronic Sciences, Changsha University of Science and Technology, Changsha 410114, China.
J Chem Phys. 2024 May 21;160(19). doi: 10.1063/5.0197757.
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.
二维扭曲材料中的平带是实现与关联相关的奇异现象的关键。然而,平带通常是在具有非常小的扭曲角的大系统中实现的,这极大地增加了计算和实验的复杂性。在这项工作中,我们提出了第Ⅴ族扭曲双层材料,包括处于大扭曲角β相的磷、砷和锑。我们通过深度学习方法DeepH研究了多达2524个原子的扭曲双层材料的能带结构,这显著减少了计算时间。我们的结果表明,扭曲双层β - 磷、β - 砷和β - 锑的带隙和平带宽度随着扭曲角的减小而逐渐减小,并实现了带宽接近0电子伏特的超平带。有趣的是,我们发现9.43°的扭曲角足以使β - 砷实现与扭曲双层石墨烯在1.08°神奇角度时相当的能带平坦度。此外,我们还发现带隙随着层间距离的减小而减小,同时平带仍然保留,这表明层间距离是调节平带系统带隙的有效途径。我们的研究为探索扭曲层状二维材料中与平带相关的物理现象提供了一个可行的平台。