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Intralayer Hydrogen Bonds from Coordinated Water and X-ray Detection Performance in a Large-Sized 2D Rare-Earth
Hong-Fei Zhao1,2, Zheng-Hui Hu2, Dong-Lan Zhang1
1School of Energy and Mechanical Engineering, Jiangxi University of Science and Technology, Nanchang330013, China.
Abstract:
In this study, we successfully synthesized large-sized single crystals of a two-dimensional rare-earth double perovskite, (TEA)KNd(NO3)5(H2O) (1). Single-crystal diffraction confirms coordinated water molecules construct an intralayer hydrogen-bond network, lowering lattice symmetry, strengthening intermolecular interactions, inhibiting phase transitions and boosting in-plane charge transport to favor charge collection and low-bias X-ray response under low dose rates. UV-vis diffuse reflectance measurements and DFT calculations validate its wide-bandgap characteristic; band-edge states mainly originate from nitrate O-2p orbitals, and coordinated water indirectly tunes electronic properties via structural modulation. Notably, 1 exhibits outstanding X-ray detection capability. Under a dose rate range of 30-402 nGy·s-1 and a bias of 5 V, the device achieved a sensitivity of 533.409 μC·Gyair-1·cm-2 and a low detection limit of 1.353 nGy·s-1, alongside excellent operational stability. These results highlight the critical role of coordinated water molecules in suppressing phase transitions and achieving high-performance X-ray detection, providing insights for the development of environmentally friendly, high-performance X-ray detectors.
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