范德瓦尔斯力
物理
量子
晶体工程
非线性系统
晶体结构
非线性光学
纳米技术
理论物理学
Crystal(编程语言)
统计物理学
经典力学
量子力学
分子
材料科学
化学
计算机科学
结晶学
氢键
程序设计语言
作者
Ankit Disa,T. F. Nova,A. Cavalleri
出处
期刊:Nature Physics
[Nature Portfolio]
日期:2021-10-01
卷期号:17 (10): 1087-1092
被引量:139
标识
DOI:10.1038/s41567-021-01366-1
摘要
The crystal structure of a solid largely dictates its electronic, optical and mechanical properties. Indeed, much of the exploration of quantum materials in recent years including the discovery of new phases and phenomena in correlated, topological and two-dimensional materials—has been based on the ability to rationally control crystal structures through materials synthesis, strain engineering or heterostructuring of van der Waals bonded materials. These static approaches, while enormously powerful, are limited by thermodynamic and elastic constraints. An emerging avenue of study has focused on extending such structural control to the dynamical regime by using resonant laser pulses to drive vibrational modes in a crystal. This paradigm of ‘nonlinear phononics’ provides a basis for rationally designing the structure and symmetry of crystals with light, allowing for the manipulation of functional properties at high speed and, in many instances, beyond what may be possible in equilibrium. Here we provide an overview of the developments in this field, discussing the theory, applications and future prospects of optical crystal structure engineering.
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