杰纳斯
激子
堆积
化学
非线性光学
非线性系统
量子
非线性光学
光电子学
对称(几何)
共振(粒子物理)
凝聚态物理
微扰理论(量子力学)
密度泛函理论
电场
对称性破坏
杰纳斯粒子
量子点
纳米技术
摄动(天文学)
二次谐波产生
量子阱
分子物理学
含时密度泛函理论
物理
光学现象
作者
Xuelian Sun,Chengzhi Wu,Yang Li,Liangting Ye,Bin Cui,Zeyu Jiang,Bing Huang
摘要
Nonlinear optical (NLO) responses are vital for lasers, sensing, and quantum technologies. In two-dimensional systems, many-body excitonic effects can profoundly modify NLO responses, giving rise to novel exciton-mediated NLO phenomena. However, our understanding of these effects in real materials remains limited, particularly regarding controllable manipulation of NLO responses via excitons. Here, we report strong excitonic second-harmonic generation (SHG) in an experimentally synthesized, ground-state-stable Janus monolayer, RhSeCl. Combining density functional theory and many-body perturbation theory, we reveal that its giant SHG arises not only from intrinsic symmetry breaking but also crucially from an exciton-assisted double resonance mechanism. In bilayers, distinct stacking configurations enable giant SHG modulation, accompanied by a switch in the dominant contribution from intralayer to interlayer excitons. Vertical electric fields further enhance tunability through precise control of hybridization between interlayer and intralayer excitons. Our finding establishes Janus materials as a promising excitonic NLO platform, enabling the systematic design of nonlinear quantum light sources through controlled exciton engineering.
科研通智能强力驱动
Strongly Powered by AbleSci AI