Strong Second- and Third-Harmonic Generation in 1D Chiral Hybrid Bismuth Halides

二次谐波产生 化学 卤化物 单层 激子 Crystal(编程语言) 非线性光学 光电子学 晶体结构 纳米技术 化学物理 非线性系统 结晶学 凝聚态物理 光学 材料科学 无机化学 有机化学 物理 量子力学 生物化学 程序设计语言 激光器 计算机科学
作者
Yao Li,Zhouxiaosong Zeng,Chengkun Cai,Peng Xu,Honggang Gu,Liang Gao,Junbo Han,Xiaowei Zhang,Xi Wang,Xiao Wang,Anlian Pan,Jian Wang,Wenxi Liang,Shiyuan Liu,Chao Chen,Jiang Tang
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:143 (39): 16095-16104 被引量:105
标识
DOI:10.1021/jacs.1c06567
摘要

Breaking the symmetry of a crystal structure can enable even-order nonlinear activities, including second-harmonic generation (SHG). The emerging chiral hybrid organic–inorganic metal halides feature unique optical and electronic properties and flexible crystal structures, making them a class of promising nonlinear optical materials. However, their nonlinear response performances are currently inferior to traditional nonlinear crystals, because of the lack of research on resonant enhancement and third-harmonic generation (THG). Herein, we designed chiral hybrid bismuth halides with naturally nonsymmetrical structure to enable SHG. Simultaneously, these chiral compounds preserve 1D crystal structures to create strong free exciton, broad self-trapped exciton (STE), and discrete band energy levels, which facilitate the resonant enhancement of SHG and THG susceptibilities. These new chiral films showcase superior effective SHG susceptibility (χ(2) ∼ 130.5 pm V–1 at an interesting wavelength of 1550 nm), exceeding that of the reference, a commercial LiNbO3 (χ(2) ∼ 83.4 pm V–1) single-crystal film. Furthermore, their THG intensities are even higher than their SHG intensities, with effective THG susceptibility (χ(3)) being ∼9.0 × 106 pm2 V–2 at 1550 nm (37 times that of the reference monolayer WS2). Their high SHG and THG performances indicate the promising future of these 1D chiral hybrid bismuth halides toward nonlinear optical applications.
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