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涉及多种化学键的各向异性结构构建单元:高性能二阶非线性光学材料的新机遇。

Anisotropic structure building unit involving diverse chemical bonds: a new opportunity for high-performance second-order NLO materials.

作者信息

Liu Xin, Yang Yi-Chang, Li Meng-Yue, Chen Ling, Wu Li-Ming

机构信息

Beijing Key Laboratory of Energy Conversion and Storage Materials, College of Chemistry, Beijing Normal University, Beijing 100875, People's Republic of China.

Center for Advanced Materials Research, Advanced Institute of Natural Sciences, Beijing Normal University at Zhuhai, Zhuhai 519087, People's Republic of China.

出版信息

Chem Soc Rev. 2023 Dec 11;52(24):8699-8720. doi: 10.1039/d3cs00691c.

Abstract

We define the anisotropic structure building unit that encompasses diverse chemical bonds (ABUCB). The ABUCB is highly likely to cause anisotropy in both crystallographic structure and spatial electron distribution, ultimately resulting in enhanced macroscopic optical anisotropy. Accordingly, the (POF) or (SOF) tetrahedron involving the unique P-F or S-F bond serves as such an ABUCB. The distinct chemical bond effectively alters the microscopic nature of the structure building unit, such as polarizability anisotropy, hyperpolarizability, and geometry distortion; this consequently changes the macroscopic second-order nonlinear optical (2nd-NLO) properties of the materials. In this review, we summarize both typical and newly emerged compounds containing ABUCBs. These compounds encompass approximately 90 examples representing six distinct categories, including phosphates, borates, sulfates, silicates, chalcogenides and oxyhalides. Furthermore, we demonstrate that the presence of ABUCBs in DUV/UV NLO compounds contributes to an increase in birefringence and retention of a large band gap, facilitating phase matching in high-energy short-wavelength spectral ranges. On the other hand, the inclusion of ABUCBs in IR NLO compounds offers a feasible method for increasing the band gap and consequently enhancing the larger laser-induced damage threshold. This review consolidates various trial-and-error explorations and presents a novel strategy for designing 2nd-NLO compounds, potentially offering an opportunity for the development of high-performance 2nd-NLO materials.

摘要

我们定义了包含多种化学键的各向异性结构构建单元(ABUCB)。ABUCB极有可能在晶体结构和空间电子分布两方面引起各向异性,最终导致宏观光学各向异性增强。因此,涉及独特P-F或S-F键的(POF)或(SOF)四面体可作为这样一种ABUCB。这种独特的化学键有效地改变了结构构建单元的微观性质,如极化率各向异性、超极化率和几何畸变;这进而改变了材料的宏观二阶非线性光学(2nd-NLO)性质。在本综述中,我们总结了包含ABUCB的典型化合物和新出现的化合物。这些化合物包括约90个代表六个不同类别的实例,包括磷酸盐、硼酸盐、硫酸盐、硅酸盐、硫族化物和卤氧化物。此外,我们证明了在深紫外/紫外非线性光学化合物中存在ABUCB有助于增加双折射并保持较大的带隙,有利于在高能短波长光谱范围内实现相位匹配。另一方面,在红外非线性光学化合物中引入ABUCB为增加带隙并因此提高更大的激光损伤阈值提供了一种可行的方法。本综述整合了各种反复试验的探索,并提出了一种设计二阶非线性光学化合物的新策略,可能为高性能二阶非线性光学材料的开发提供机会。

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