CsVO2F(IO3): An Excellent SHG Material Featuring an Unprecedented 3D [VO2F(IO3)]− Anionic Framework

The first alkali‐metal vanadium iodate fluoride, CsVO2F(IO3), with a novel 3D anionic framework, has been rationally designed and hydrothermally synthesized. The 3D [VO2F(IO3)]− framework in CsVO2F(IO3) is built from 0D Λ‐shaped cis‐[VO3F(IO3)2]4− polyanions via corner‐sharing of oxo anions and brid...

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Published inAngewandte Chemie International Edition Vol. 59; no. 13; pp. 5381 - 5384
Main Authors Chen, Jin, Hu, Chun‐Li, Zhang, Xiao‐Han, Li, Bing‐Xuan, Yang, Bing‐Ping, Mao, Jiang‐Gao
Format Journal Article
LanguageEnglish
Published Weinheim Wiley Subscription Services, Inc 23.03.2020
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Abstract The first alkali‐metal vanadium iodate fluoride, CsVO2F(IO3), with a novel 3D anionic framework, has been rationally designed and hydrothermally synthesized. The 3D [VO2F(IO3)]− framework in CsVO2F(IO3) is built from 0D Λ‐shaped cis‐[VO3F(IO3)2]4− polyanions via corner‐sharing of oxo anions and bridging of the iodate groups. CsVO2F(IO3) displays both a strong second‐harmonic generation (SHG) 1.1 times as strong as KTiOPO4 (KTP) under 2.05 μm laser radiation and high laser‐induced damage threshold (LIDT) of 107.9 MW cm−2. This work provides a new route to design SHG crystals with stable 3D anionic structures from low‐dimensional structural building units. From zero to threero: CsVO2F(IO3) is the first example of a 3D [VO2F(IO3)]− anionic framework built from 0D Λ‐shaped cis‐[VO3F(IO3)2]4− units. The system shows a strong second‐harmonic generation (SHG), 1.1 times as strong as KTiOPO4 under 2.05 μm laser radiation and a high laser‐induced damage threshold of 107.9 MW cm−2.
AbstractList The first alkali‐metal vanadium iodate fluoride, CsVO2F(IO3), with a novel 3D anionic framework, has been rationally designed and hydrothermally synthesized. The 3D [VO2F(IO3)]− framework in CsVO2F(IO3) is built from 0D Λ‐shaped cis‐[VO3F(IO3)2]4− polyanions via corner‐sharing of oxo anions and bridging of the iodate groups. CsVO2F(IO3) displays both a strong second‐harmonic generation (SHG) 1.1 times as strong as KTiOPO4 (KTP) under 2.05 μm laser radiation and high laser‐induced damage threshold (LIDT) of 107.9 MW cm−2. This work provides a new route to design SHG crystals with stable 3D anionic structures from low‐dimensional structural building units. From zero to threero: CsVO2F(IO3) is the first example of a 3D [VO2F(IO3)]− anionic framework built from 0D Λ‐shaped cis‐[VO3F(IO3)2]4− units. The system shows a strong second‐harmonic generation (SHG), 1.1 times as strong as KTiOPO4 under 2.05 μm laser radiation and a high laser‐induced damage threshold of 107.9 MW cm−2.
The first alkali‐metal vanadium iodate fluoride, CsVO2F(IO3), with a novel 3D anionic framework, has been rationally designed and hydrothermally synthesized. The 3D [VO2F(IO3)]− framework in CsVO2F(IO3) is built from 0D Λ‐shaped cis‐[VO3F(IO3)2]4− polyanions via corner‐sharing of oxo anions and bridging of the iodate groups. CsVO2F(IO3) displays both a strong second‐harmonic generation (SHG) 1.1 times as strong as KTiOPO4 (KTP) under 2.05 μm laser radiation and high laser‐induced damage threshold (LIDT) of 107.9 MW cm−2. This work provides a new route to design SHG crystals with stable 3D anionic structures from low‐dimensional structural building units.
Author Zhang, Xiao‐Han
Yang, Bing‐Ping
Li, Bing‐Xuan
Mao, Jiang‐Gao
Chen, Jin
Hu, Chun‐Li
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Snippet The first alkali‐metal vanadium iodate fluoride, CsVO2F(IO3), with a novel 3D anionic framework, has been rationally designed and hydrothermally synthesized....
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wiley
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SubjectTerms 3D cationic frameworks
Alkali metals
Anions
Crystal structure
Crystals
Dimensional stability
Fluorides
Harmonic generations
Laser damage
Laser radiation
Polyanions
Polyelectrolytes
Potassium titanyl orthophosphate
Radiation damage
SHG materials
theoretical calculations
Vanadium
vanadium oxide-fluoride
Yield point
Title CsVO2F(IO3): An Excellent SHG Material Featuring an Unprecedented 3D [VO2F(IO3)]− Anionic Framework
URI https://onlinelibrary.wiley.com/doi/abs/10.1002%2Fanie.202000587
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