4.8 Article

Deep-Ultraviolet Transparent Cs2LiPO4 Exhibits an Unprecedented Second Harmonic Generation

期刊

CHEMISTRY OF MATERIALS
卷 28, 期 19, 页码 7110-7116

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemmater.6b03333

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资金

  1. Strategic Priority Research Program of Chinese Academy of Sciences [XDB20000000]
  2. NSFC [11174297, 21525104, 21571178, 21601188, 51277091, 51402296, 51502288, 51502290, 91422301]
  3. NSF of Fujian Province [2015J01219, 2015J05040]
  4. 863 Program of China [2015AA034203]
  5. Middle-aged and Young Teachers' Rroject of Fujian Province [JAT160380]
  6. Youth Innovation Promotion of CAS [2015240, 2016274]
  7. NSF for Distinguished Young Scholars of Fujian Province [2016J06012]
  8. Chunmiao Projects of Haixi Institute of Chinese Academy of Sciences [CMZX-2014-003]

向作者/读者索取更多资源

Developing superior deep-ultraviolet (deep-UV) nonlinear optical (NLO) materials is a great challenge because of the contradiction between deep-UV transparency and enhanced second harmonic generation (SHG), especially for deep-UV NLO phosphates in which the constituent P-O groups have relatively small microscopic SHG coefficients. Here we report a new noncentrosymmetric phosphate Cs2LiPO4 (I), whose crystal structure consists of [LiPO4](infinity) layered structural units with a novel honeycomb-like topology. As compared with the benchmark deep-UV NLO material KBe2BO3F2 I is beryllium-free, and it is relatively easy to grow its large single crystals because of its congruent melting. Furthermore, it not only is deep-UV transparent but also exhibits an unexpectedly enhanced SHG response of 1.8 X KH2PO4 that hits a new high in deep-UV NLO phosphates. These results demonstrate that I satisfies the key requirements of being a promising deep-UV NLO candidate. Theory calculations and structural analysis reveal that the enhanced SHG response can be attributed to the honeycomb-like topological structure, which endows the constituent [PO4](3-) monomers of I with an aligned arrangement and as a result a favorable superposition of their microscopic SHG coefficients. These findings may provide useful insights into the development of both deep-UV NLO materials and honeycomb-like topological structures.

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