论文标题

工程对称性破坏二维分层材料

Engineering symmetry breaking in two-dimensional layered materials

论文作者

Du, Luojun, Hasan, Tawfique, Castellanos-Gomez, Andres, Liu, Gui-Bin, Yao, Yugui, Lau, Chun Ning, Sun, Zhipei

论文摘要

二维分层材料中的对称性破裂在其宏观电气,光学,磁性和拓扑特性中起着重要作用,包括但不限于自旋极化效应,谷化对抗性物理学,非线性霍尔效应,非线性霍尔效应,nematic order,铁电,铁电,Bose-ineinstein浓缩和不可强化和不一致的超级强制性。二维分层材料的工程对称性破坏不仅提供了特性的特性,而且还提供了前所未有的可能性,以引入电子,光子学和光载体中的全新物理和技术创新。确实,在过去的15年中,已经开发出各种物理,结构和化学方法来设计二维分层材料的对称性破坏。在这篇综述中,我们将重点放在工程上,以二维分层材料中的倒置,旋转,时间逆转和自发规格对称性的破坏,并说明了我们对这些方式如何导致潜在的新物理和应用的观点。

Symmetry breaking in two-dimensional layered materials plays a significant role in their macroscopic electrical, optical, magnetic and topological properties, including but not limited to spin-polarization effects, valley-contrasting physics, nonlinear Hall effects, nematic order, ferroelectricity, Bose-Einstein condensation and unconventional superconductivity. Engineering symmetry breaking of two-dimensional layered materials not only offers extraordinary opportunities to tune their physical properties, but also provides unprecedented possibilities to introduce completely new physics and technological innovations in electronics, photonics and optoelectronics. Indeed, over the past 15 years, a wide variety of physical, structural and chemical approaches have been developed to engineer symmetry breaking of two-dimensional layered materials. In this Review, we focus on the recent progresses on engineering the breaking of inversion, rotational, time reversal and spontaneous gauge symmetries in two-dimensional layered materials, and illustrate our perspectives on how these may lead to potential new physics and applications.

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