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无周期性莫尔势时扭曲双层石墨烯量子点的极化率特性

Polarizability characteristics of twisted bilayer graphene quantum dots in the absence of periodic moiré potential.

作者信息

Liu Xiangyue, Wang Xian, Yu Shengping, Wang Guangzhao, Li Bing, Cui Tiantian, Lou Zhaoyang, Ge Hong

机构信息

The Affiliated Cancer Hospital of Zhengzhou University, Henan Cancer Hospital Zhengzhou 450008 China

Institute of Atomic and Molecular Physics, Key Laboratory of High Energy Density Physics of Ministry of Education, Sichuan University Chengdu 610065 China.

出版信息

RSC Adv. 2023 Aug 7;13(34):23590-23600. doi: 10.1039/d3ra03444e. eCollection 2023 Aug 4.

Abstract

Recent studies have documented a rich phenomenology in twisted bilayer graphene (TBG), which is significantly relevant to interlayer electronic coupling, in particular to the cases under an applied electric field. While polarizability measures the response of electrons against applied fields, this work adopts a unique strategy of decomposing global polarizability into distributional contributions to access the interlayer polarization in TBG, as a function of varying twisting angles (). Through the construction of a model of twisted graphene quantum dots, we assess distributional polarizability at the first-principles level. Our findings demonstrate that the polarizability perpendicular to the graphene plates can be decomposed into intralayer dipoles and interlayer charge-transfer (CT) components, the latter of which provides an explicit measurement of the interlayer coupling strength and charge transfer potential. Our analysis further reveals that interlayer polarizability dominates the polarizability variation during twisting. Intriguingly, the largest interlayer polarizability and CT driven by an external field occur in the misaligned structures with a size-dependent small angle corresponding to the first appearance of AB stacking, rather than the well-recognized Bernal structures. A derived equation is then employed to address the size dependence on the angle corresponding to the largest values in interlayer polarizability and CT. Our investigation not only characterizes the CT features in the interlayer polarizability of TBG quantum dots, but also sheds light on the existence of the strongest interlayer coupling and charge transfer at small twist angles in the presence of an external electric field, thereby providing a comprehensive understanding of the novel properties of graphene-based nanomaterials.

摘要

最近的研究记录了扭曲双层石墨烯(TBG)中丰富的现象学,这与层间电子耦合密切相关,特别是在施加电场的情况下。虽然极化率衡量电子对施加电场的响应,但这项工作采用了一种独特的策略,将全局极化率分解为分布贡献,以获取TBG中的层间极化,作为扭曲角()变化的函数。通过构建扭曲石墨烯量子点模型,我们在第一性原理水平上评估分布极化率。我们的研究结果表明,垂直于石墨烯平面的极化率可以分解为层内偶极子和层间电荷转移(CT)分量,后者提供了层间耦合强度和电荷转移势的明确测量。我们的分析进一步表明,层间极化率在扭曲过程中主导极化率变化。有趣的是,由外部场驱动的最大层间极化率和CT出现在与AB堆叠首次出现相对应的尺寸依赖小角度的错位结构中,而不是广为人知的伯纳尔结构。然后使用一个推导方程来解决层间极化率和CT最大值对应的角度的尺寸依赖性。我们的研究不仅表征了TBG量子点层间极化率中的CT特征,还揭示了在外部电场存在下小扭曲角处最强层间耦合和电荷转移的存在,从而全面理解了基于石墨烯的纳米材料的新特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a9d0/10404935/a685ca99985f/d3ra03444e-f1.jpg

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