应变石墨烯和其他应变单层和多层的机械、电子、光学、压电和铁电性能:更新。

Gerardo G Naumis, Saúl A Herrera, Shiva P Poudel, Hiro Nakamura, Salvador Barraza-Lopez
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引用次数: 0

摘要

这是对先前主题审查的更新。已经考虑了应变石墨烯和其他金属、绝缘、铁电、铁弹性、铁磁和多铁性2D材料的实验和理论进展。讨论的具体主题包括:(i)在石墨烯中诱导谷和亚晶格极化($\mathbf{P}$)的方法,(ii)时间相关应变及其对石墨烯电子性质的影响,(iii)局部和全局应变对石墨烯的超导性和其他高度相关和/或拓扑相的作用,通过应变在六方氮化硼单层上诱导极化$\mathbf{P}$,(iv)测量应变,并通过应变改变过渡金属二硫族化合物的光电性质,(v)在应变下具有本征弹性($\sigma$)、电($\mathbf{P}$)和磁($\math BF{M}$)极化的铁磁性2D材料,以及表现出平坦电子带和奇异量子相图的初始2D多铁性和(vi)莫尔双层,以及表现出可通过旋转和剪切应变调节的铁性次序的其他双层或少层系统。该综述介绍了锗烯、单元素二维铁电铋和二维多铁性NiI$_2$中可调谐二维量子自旋霍尔效应的最新实验实现。该文件的结构是为了首先讨论单层中发生的效应,然后讨论双层和少层,它代表了2D材料快节奏领域令人兴奋和最新发展的最新综述。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanical, electronic, optical, piezoelectric and ferroic properties of strained graphene and other strained monolayers and multilayers: an update.

This is an update of a previous review (Naumiset al2017Rep. Prog. Phys.80096501). Experimental and theoretical advances for straining graphene and other metallic, insulating, ferroelectric, ferroelastic, ferromagnetic and multiferroic 2D materials were considered. We surveyed (i) methods to induce valley and sublattice polarisation (P) in graphene, (ii) time-dependent strain and its impact on graphene's electronic properties, (iii) the role of local and global strain on superconductivity and other highly correlated and/or topological phases of graphene, (iv) inducing polarisationPon hexagonal boron nitride monolayers via strain, (v) modifying the optoelectronic properties of transition metal dichalcogenide monolayers through strain, (vi) ferroic 2D materials with intrinsic elastic (σ), electric (P) and magnetic (M) polarisation under strain, as well as incipient 2D multiferroics and (vii) moiré bilayers exhibiting flat electronic bands and exotic quantum phase diagrams, and other bilayer or few-layer systems exhibiting ferroic orders tunable by rotations and shear strain. The update features the experimental realisations of a tunable two-dimensional Quantum Spin Hall effect in germanene, of elemental 2D ferroelectric bismuth, and 2D multiferroic NiI2. The document was structured for a discussion of effects taking place in monolayers first, followed by discussions concerning bilayers and few-layers, and it represents an up-to-date overview of exciting and newest developments on the fast-paced field of 2D materials.

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