Exploring quaternary vanadates containing alkali metals, alkaline earth metals, and [VO4] in the quest for nonlinear optical materials†

IF 2.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
CrystEngComm Pub Date : 2025-03-05 DOI:10.1039/D4CE01058B
Xiaoming Wang, Qiuyuan Feng, Ketian Hou, Wei Wei, Juanjuan Lu, Lai Wei and Feng Zhang
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引用次数: 0

Abstract

VO4 units are highly susceptible to distortion induced by crystal fields, and thus, they are favorable for generating second-order nonlinear optical properties in the visible-light frequency range. Among the quaternary compounds containing VO4 units, vanadates with cations of alkali metals and/or alkaline earth metals exhibit a higher proportion of non-centrosymmetric structures, making them promising candidates for exploring nonlinear optical materials. However, to date, the optical properties of compounds within this category have rarely been characterized. In this work, we successfully synthesized two non-centrosymmetric compounds, NaMg4(VO4)3 and LiMg4(VO4)3. Experimental results showed that NaMg4(VO4)3, which has a bandgap of 3.14 eV, showed a second-harmonic generation response of 1.1 × KDP and 0.4 × AGS at its maximum particle size. LiMg4(VO4)3, with a bandgap of 3.10 eV, showed a second-harmonic generation response of 0.7 × KDP and 0.1 × AGS at its maximum particle size. NaMg4(VO4)3 could achieve phase matching at the fundamental frequency of 2090 nm but not at 1064 nm. LiMg4(VO4)3 was unable to achieve phase matching at both the fundamental frequencies of 1064 nm and 2090 nm. In summary, we conducted a systematic investigation of quaternary compounds containing alkali and alkaline earth metal cations and VO4 anions and performed a comprehensive characterization of the nonlinear optical properties of NaMg4(VO4)3 and LiMg4(VO4)3. The findings give insights into designing new vanadate-based compounds for the application of nonlinear optical materials in the future.

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来源期刊
CrystEngComm
CrystEngComm 化学-化学综合
CiteScore
5.50
自引率
9.70%
发文量
747
审稿时长
1.7 months
期刊介绍: Design and understanding of solid-state and crystalline materials
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