三元运算
化学
离子键合
吸收边
双折射
光电子学
离子
Crystal(编程语言)
透明度(行为)
合理设计
宽带
化学物理
非线性光学
吸收光谱法
吸收(声学)
结晶学
光学透明度
二次谐波产生
非线性光学
工作(物理)
各向异性
GSM演进的增强数据速率
单晶
晶体结构
光学材料
稀土
纳米技术
光子晶体
失真(音乐)
光学
正交晶系
工程物理
格子(音乐)
四方晶系
设计要素和原则
作者
Xiaohui Zhang,Ye Tao,Qianshuang Lu,J. N. Tan,Chenglong Xu,Yingjie Li,Yi Chen,Jianke Pan,F. H. Su,Tingchao He,Haifeng Dong,Heng Wang,Zhi Chen,X. Yu,Xiaopeng Li
摘要
Comprehensive Summary Rare earth (RE) crystals have garnered considerable attention as second‐order nonlinear optical (NLO) materials, owing to highly electropositive nature and large ionic radii of RE cations, which facilitate strong ionic bonding, structural versatility, and enhanced NLO susceptibilities. Despite these intrinsic advantages, achieving simultaneously strong NLO activity and deep‐ultraviolet (deep‐UV) transparency in RE crystals remains a formidable challenge. Herein, we report the rational design and synthesis of a new family of RE crystals enabled by a ternary anion‐engineering strategy, in which π‐conjugated carbonate, non‐π‐conjugated sulfate, and lone‐pair‐electron‐containing hydroxyl group are synergistically integrated into a single crystal lattice. The cooperative interplay among these chemically and electronically distinct anions induces a new noncentrosymmetric structural motif, giving rise to exceptional deep‐UV transparency, with an absorption edge below 190 nm, surpassing that of many reported RE NLO crystals constructed via complementary anion engineering. Furthermore, such crystals exhibit a strong second‐harmonic generation response, with an intensity 2.5 times that of Y‐cut quartz at 860 nm, along with a suitable birefringence of 0.023@1064 nm. This work provides a versatile design paradigm for the development of high‐performance RE‐based deep‐UV NLO materials, and underscores the critical role of multi‐anions in tuning structural distortion and optical functionality.
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