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CsB(OH)4(H2O)2 and Na(NH4)2B10O16OH(H2O): a hydroxylation modification strategy regulates the borate structures and
Kelibinuer Wulamu1,2, Ziting Yan2, Dongdong Chu2
1Xinjiang Key Laboratory of Energy Storage and Photoelectrocatalytic Materials; College of Chemistry and Chemical Engineering, Xinjiang Normal University, Urumqi, 830054, China. 175790509@qq.com.
None:
This study focuses on hydroxyborates and employs a hydroxylation modification strategy to regulate the anionic framework of borates, leading to the successful synthesis of two novel hydroxyborates, namely, CsB(OH)4(H2O)2 and Na(NH4)2B10O16OH(H2O). With an ultraviolet (UV) cutoff edge below 200 nm, CsB(OH)4(H2O)2 possesses considerable potential for deep-ultraviolet (DUV) transmission applications. Notably, Na(NH4)2B10O16OH(H2O) represents a rare case of a hydroxyborate that contains two distinct fundamental building blocks (FBBs), namely [B5O10]5- and [B5O10(OH)]6-. In its structure, pseudo-layers constructed from 1∞[B5O9] chains alternate with those formed from 1∞[B5O9(OH)] chains, resulting in a structurally unique arrangement. Furthermore, Na(NH4)2B10O16OH(H2O) displays a large birefringence value of 0.074 at 546 nm, manifesting remarkable optical anisotropy-a key property for DUV polarization optical devices. Overall, these results demonstrate that the introduction of hydroxyl groups can effectively modulate the B-O framework and further enrich the structural diversity of borate-based optical materials.
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