材料科学
带隙
紫外线
光电子学
电介质
圆二色性
各向异性
非线性光学
截止频率
工作(物理)
介电常数
光学
切断
化学物理
光子学
非线性系统
分子物理学
非线性光学
光子晶体
GSM演进的增强数据速率
二色性
透明度(行为)
卤化物
半导体
无缝回放
作者
Jia-Hang Wu,Qiang-Qiang Bi,Ming‐Zhi Zhang,Yue Zhao,Zhao‐Rui Hua,Chun‐Li Hu,Zhi-Chao Huang-Fu,Yu‐Meng You,Wen Zhang
摘要
ABSTRACT Two‐dimensional (2D) chiral organic–inorganic hybrid metal halides (OIHMHs) are promising for chiroptical applications. However, conventional Ge/Sn/Pb‐based systems remain limited by narrow bandgaps and poor moisture stability. In this work, we report the first 2D chiral hybrid fluorozirconate, ( R/S ‐MBA)ZrF 5 (MBA = methylbenzylammonium), addressing these limitations through reversed quantum‐well engineering enabled by a high‐valent Zr─F framework. It features a unique reversed Type‐I quantum‐well electronic structure, where the [ZrF 5 ] inorganic layer acts as a dielectric barrier and the band‐edge states are localized on the organic MBA cations. This structure yields a wide bandgap of 4.60 eV, a short UV cutoff edge of 265 nm, and a high laser‐induced damage threshold exceeding 1251.58 GW/cm 2 , providing a broad transparency window toward the UV region. Furthermore, ( R/S ‐MBA)ZrF 5 exhibits a large SHG circular dichroism (SHG‐CD) response with an anisotropy factor of 1.05. More importantly, it overcomes the typical moisture‐sensitivity of OIHMHs, maintaining its structural stability and SHG‐CD response after a 7‐day water immersion. Structural analysis and theoretical calculations reveal this unusual water resistance is mainly attributed to the robust Zr─F framework and an effective cavity volume of 3.6%. This work highlights reversed quantum‐well engineering as a novel way to synthesize water‐stable and wide bandgap chiral nonlinear optical materials.
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