材料科学
结晶
化学工程
纳米技术
结晶学
工作(物理)
X射线晶体学
纳米颗粒
晶体结构
亚稳态
作者
Yue Zhang,Yuanjie Sun,Z. H Liu,Hongyun Zhao,Hongyun Zhao,Hongyun Zhao,Hongyun Zhao,Zhigang Li
标识
DOI:10.1021/acsami.5c26334
摘要
Organic–inorganic hybrid perovskite single crystals have shown great potential as next-generation high-sensitivity X-ray detectors. However, the thermodynamic instability of their precursor solutions often leads to disordered nucleation and defect proliferation during crystallization, which considerably limits the performance of resulting devices. This study shows that polymeric inhibitor effectively suppresses disordered nucleation in perovskite precursor solutions. The coordination mechanism between PVP and the MAPbBr 3 precursor solutions is revealed by IGMH (Independent Gradient Model based on Hirshfeld partition) analysis, density functional theory (DFT) calculations, and experimental results. It is revealed that PVP forms a distinct dual-site coordination complex with Pb 2+, interacting simultaneously through its carbonyl and pyrrolidone ring. This specific coordination geometry significantly enhances the thermodynamic stability of the precursor system by maintaining an optimal solute concentration within the metastable zone, thus effectively inhibiting spontaneous nucleation. The MAPbBr 3 (with PVP) SC (single crystal) exhibits a low defect density of 6.56 × 10 8 cm –3 and a high carrier mobility-lifetime product (μτ) of 1.11 × 10 –3 cm 2 ·V –1 . The X-ray detector fabricated based on the crystal demonstrates a high sensitivity of 1.73 × 10 4 μC·Gy air –1 ·cm –2 and a low detection limit of 43.55 nGy air ·s –1 . This study provides a new strategy for modulating perovskite crystallization kinetics through coordination engineering, offering a viable pathway for developing high-performance radiation detectors.
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