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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Molecular Engineering Design to Resolve the Layering Habit and Polymorphism Problems in Deep UV NLO Crystals: New Structures in MM'Be2B2O6F (M=Na, M'=Ca; M= K, M'=Ca, Sr)
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Molecular Engineering Design to Resolve the Layering Habit and Polymorphism Problems in Deep UV NLO Crystals: New Structures in MM'Be2B2O6F (M=Na, M'=Ca; M= K, M'=Ca, Sr)

机译:解决深紫外NLO晶体中的分层行为和多态性问题的分子工程设计:MM'Be2B2O6F(M = Na,M'= Ca; M = K,M'= Ca,Sr)中的新结构

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摘要

A novel series of alkali and alkaline earth metal combined fluorine beryllium borates NaCaBe2B2O6F, KCa-Be2B2O6F, and KSrBe2B2O6F were successfully synthesized through molecular engineering design and grown in crystals by spontaneous nucleation technique from self-flux systems. The idea, introduction of relatively small alkali and alkaline earth metal cations and the fluorine anion, successfully resulted in the novel UV NLO crystal NaCaBe2B2O6F, the following substitution of cations directed to two centrosymmetric compounds KCa-Be2B2O6F and KSrBe2B2O6F. In all of their structures, the a-b plane is the infinite lattice layer (Be3B3OgF3)_∞ made up of BO3 and BeO3F anionic groups, and for the first time, it was found that the adjacent layers are connected with fluorine bridge atoms to form (Be6B6O_(12)F3)_∞ double layers, instead of oxygen bridge atoms usually occurred in other oxides. This structural characteristic is greatly beneficial to improve the layering-growth habit and eliminate polymorphism of a crystal. Optical measurements on the nonlinear optical crystal of NaCaBe2B2O6F reveal that this crystal is phase-matchable and its short-wavelength absorption edge is down to deep UV (below 190 nm). Theoretical calculations on electronic structure were carried out to explain the experimental results. Our preliminary results indicate that NaCaBe2B2O6F has promising applications in the UV spectrum region.
机译:通过分子工程设计成功地合成了一系列新型的碱金属和碱土金属结合的硼酸氟铍盐NaCaBe2B2O6F,KCa-Be2B2O6F和KSrBe2B2O6F,并通过自磁通技术通过自发成核技术在晶体中生长。引入相对较小的碱金属和碱土金属阳离子以及氟阴离子的想法成功产生了新型的UV NLO晶体NaCaBe2B2O6F,随后将阳离子替换为两种中心对称化合物KCa-Be2B2O6F和KSrBe2B2O6F。在其所有结构中,ab平面都是由BO3和BeO3F阴离子基团组成的无限晶格层(Be3B3OgF3)_∞,并且首次发现相邻的层与氟桥原子连接形成( Be6B6O_(12)F3)_∞双层,通常不是氧桥原子出现在其他氧化物中。这种结构特征对于改善层状生长习性和消除晶体的多态性非常有利。在NaCaBe2B2O6F非线性光学晶体上的光学测量表明,该晶体是相位匹配的,并且其短波长吸收边缘低至深紫外(190 nm以下)。对电子结构进行了理论计算以解释实验结果。我们的初步结果表明,NaCaBe2B2O6F在紫外光谱区域具有广阔的应用前景。

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