极地的
合理设计
非线性光学
材料科学
带隙
直觉
红外线的
极性(国际关系)
非线性系统
光学材料
非线性光学
晶体结构
光电子学
化学极性
化学物理
共价键
八面体
设计要素和原则
宽禁带半导体
Crystal(编程语言)
物理
分子
纳米技术
凝聚态物理
光学
作者
Mao‐Yin Ran,Shao-Peng Gui,Jian Cheng,Yu‐Xuan Zhang,Wen‐Dong Yao,Wenlong Liu,Sheng‐Ping Guo
摘要
ABSTRACT Polar chalcogenides have emerged as a vibrant class of candidates for infrared nonlinear optical (NLO) applications. However, achieving a balance between large NLO response and wide bandgap within a polar structure remains a crucial challenge. Here, we present a mineral‐inspired and computation‐assisted creation strategy that integrates crystallographic intuition from natural prototypes with first‐principles screening of functional [P x S y ] motifs. Guided by this approach, 13 thiophosphates were successfully identified and synthesized, including 8 polar gittinsite‐type ones, AM III P 2 S 7 (A = K, Rb, Cs; M III = V, Cr, In, La, Bi). As a representative, the structure of RbInP 2 S 7 features [InP 2 S 11 ] six‐membered rings built by the asymmetric integration of [InS 6 ] octahedra and [P 2 S 7 ] dimers, resulting in strong local polarity and robust covalent In–P–S linkages. RbInP 2 S 7 exhibits a large NLO response (2.3 × AgGaS 2 ), wide optical bandgap (3.08 eV), and high laser‐induced damage threshold (13.9 × AgGaS 2 ), surpassing most reported NLO chalcogenides. This study not only uncovers a high‐performance NLO crystal but also establishes a generalizable design paradigm that integrates mineral‐inspired chemistry with theoretical screening—offering valuable guidance for the rational discovery of future functional chalcogenides.
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