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Low-energy Cathodoluminescence for (Oxy)Nitride Phosphors
Published on: November 15, 2016
A Rare-Earth Borophosphate Ultraviolet Nonlinear Optical Crystal Featuring P-O-P Linkages
Hanjing Huang1, Huijian Zhao1, Wenli Zhao1
1State Key Laboratory of Crystal Materials, Tianjin Key Laboratory of Functional Crystal Materials, Institute of Functional Crystal, Tianjin University of Technology, Tianjin300384, China.
Abstract:
Noncentrosymmetric compounds have long attracted considerable attention in functional solid-state chemistry due to their intrinsic symmetry-breaking characteristics and the resulting nonlinear optical, piezoelectric, and ferroelectric properties. In this work, two novel anhydrous rare-earth borophosphate crystals, centrosymmetric CsScBP3O11 and noncentrosymmetric K1.41Rb0.59Sc2B2P6O22, featuring rare P-O-P linkages, were synthesized via spontaneous crystallization, representing the first observation of such structural motifs in rare-earth borophosphate systems. Notably, K1.41Rb0.59Sc2B2P6O22 exhibits a short UV cutoff edge at 218 nm, a wide band gap of 4.26 eV, robust thermal stability, and moderate SHG response, highlighting its promise as a UV NLO optical material and overturning the conventional centrosymmetric nature of P-O-P-containing borophosphates. Structural analysis combined with first-principles calculations reveals that variation of A-site cations induces a flexible contraction of the Cairo pentagonal anionic network, which effectively breaks inversion symmetry and drives the centrosymmetric-to-noncentrosymmetric transformation, while also elucidating the origin of the observed optical properties. Overall, these findings expand the structural landscape of rare-earth borophosphates and provide an effective strategy for the rational design of new UV NLO materials through unconventional framework engineering.

