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扭曲双层石墨烯纳米片中从非磁性到铁磁态的相变:电子压力对神奇扭转的作用。

Phase transition from a nonmagnetic to a ferromagnetic state in a twisted bilayer graphene nanoflake: the role of electronic pressure on the magic-twist.

作者信息

Pant Dharmendra, Pati Ranjit

机构信息

Department of Physics, Michigan Technological University, Houghton, MI 49931, USA.

Henes Center for Quantum Phenomena, Michigan Technological University, Houghton, Michigan 49931, USA.

出版信息

Nanoscale. 2022 Aug 25;14(33):11945-11952. doi: 10.1039/d2nr02476d.

Abstract

The electronic properties of a bilayer graphene nanoflake (BLGNF) depend sensitively upon the strength of the inter-layer electronic coupling (IEC) energy. Upon tuning the IEC changing the twist angle between the layer, a ferromagnetic gap state emerges in a BLGNF due to spontaneous symmetry breaking at the magic-twist. Herein, using first-principles density functional theory, we demonstrate the magic twist angle () in a bilayer graphene nanoflake at which the transition from a nonmagnetic to a ferromagnetic phase occurs can be tuned by exerting uniaxial electronic pressure (). Electronic pressure, which provides another route to control the IEC, is simulated by varying the interlayer spacing in the nanoflake. Our result shows a of 0.125 GPa corresponding to interlayer spacing () of 3.58 Å yielding a magic twist angle of ∼1° and a negative value of (-0.042 GPa) at = 3.38 Å producing a of ∼2.4°. The higher value of at a negative (smaller ) is attributed to an increase in the energy gap due to strong inter-layer electronic coupling energy in the nanoflake under uniaxial compression. This finding in the nanoflake agrees with the experimental observation in two-dimensional bilayer graphene (M. Yankowitz, S. Chen, H. Polshyn, Y. Zhang, K. Watanabe, T. Taniguchi, D. Graf, A. F. Young and C. R. Dean, , 2019, , 1059-1064) that indicated an increase in the magic angle value for the phase transition upon application of hydrostatic pressure.

摘要

双层石墨烯纳米片(BLGNF)的电子性质敏感地依赖于层间电子耦合(IEC)能量的强度。通过调整IEC(改变层间的扭转角),由于在魔角处的自发对称性破缺,双层石墨烯纳米片中会出现铁磁能隙态。在此,我们使用第一性原理密度泛函理论证明,双层石墨烯纳米片中从非磁性相到铁磁相转变发生时的魔角()可以通过施加单轴电子压力()来调节。通过改变纳米片中的层间距来模拟电子压力,这为控制IEC提供了另一条途径。我们的结果表明,对应于层间距()为3.58 Å时的单轴电子压力为0.125 GPa,产生的魔角约为1°;在层间距 = 3.38 Å时,单轴电子压力为负值(-0.042 GPa),产生的魔角约为2.4°。在负的单轴电子压力(较小的层间距)下较高的魔角值归因于在单轴压缩下纳米片中由于强层间电子耦合能量导致的能隙增加。纳米片中的这一发现与二维双层石墨烯中的实验观察结果一致(M. Yankowitz、S. Chen、H. Polshyn、Y. Zhang、K. Watanabe、T. Taniguchi、D. Graf、A. F. Young和C. R. Dean,《自然》,2019年,第566卷,第1059 - 1064页),该实验观察表明在施加静水压力时相变的魔角值增加。

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