Ran Mao-Yin, Zhou Sheng-Hua, Wei Wen-Bo, Li Bing-Xuan, Wu Xin-Tao, Lin Hua, Zhu Qi-Long
State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, 350002, P. R. China.
Fujian Science & Technology Innovation Laboratory for Optoelectronic Information of China, Fuzhou, 350002, P. R. China.
Small. 2023 May;19(19):e2300248. doi: 10.1002/smll.202300248. Epub 2023 Feb 12.
Inorganic chalcogenides have been studied as the most promising infrared (IR) nonlinear optical (NLO) candidates for the past decades. However, it is proven difficult to discover high-performance materials that combine the often-incompatible properties of large energy gap (E ) and strong second harmonic generation (SHG) response (d ), especially for rare-earth chalcogenides. Herein, centrosymmetric Cs [Sb O ][Ge O ] is selected as a maternal structure and a new noncentrosymmetric rare-earth oxychalcogenide, namely, Nd [Ga O S ][Ge O ], is successfully designed and obtained by the module substitution strategy for the first time. Especially, Nd [Ga O S ][Ge O ] is the first case of breaking the trade-off relationship between wide E (>3.5 eV) and large d (>0.5 × AgGaS ) in rare-earth chalcogenide system, and thus displays an outstanding IR-NLO comprehensive performance. Detailed structure analyses and theoretical studies reveal that the NLO effect originates mainly from the cooperation of heteroanionic [GaO S ] and [NdO S ] asymmetric building blocks. This work not only presents an excellent rare-earth IR-NLO candidate, but also plays a crucial role in the rational structure design of other NLO materials in which both large E and strong d are pursued.
在过去几十年里,无机硫属化物一直被研究作为最有前景的红外(IR)非线性光学(NLO)候选材料。然而,事实证明,很难发现能将大禁带宽度(E)和强二次谐波产生(SHG)响应(d)这两种通常不兼容的特性结合起来的高性能材料,尤其是对于稀土硫属化物而言。在此,中心对称的Cs[SbO][GeO]被选为母体结构,一种新型的非中心对称稀土氧硫属化物,即Nd[GaOS][GeO],首次通过模块取代策略成功设计并获得。特别地,Nd[GaOS][GeO]是稀土硫属化物体系中首例打破宽E(>3.5 eV)和大d(>0.5×AgGaS)之间权衡关系的材料,因此展现出优异的红外非线性光学综合性能。详细的结构分析和理论研究表明,非线性光学效应主要源于杂阴离子[GaOS]和[NdOS]不对称结构单元的协同作用。这项工作不仅展示了一种优异的稀土红外非线性光学候选材料,而且在追求大E和强d的其他非线性光学材料合理结构设计中也起着关键作用。