Gas Pump-Induced Crystallization of MAPbBr 3 Perovskite Assisted by Ligands for Sensitive Detection Applications

材料科学 结晶 钙钛矿(结构) 晶体生长 Crystal(编程语言) 配体(生物化学) 单晶 增长率 化学工程 晶种 纳米技术 光电效应 分析化学(期刊) 成核 结晶学 蛋白质结晶 环境压力 晶体结构 光电子学 纳米晶 化学物理
作者
Lili Gao,Fang Pei,Ye Yang,Ping Hu,Siyan Yang,Jiale Zhu,Fan Yang,Hua Wang,Kui Zhao
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:17 (47): 65290-65299
标识
DOI:10.1021/acsami.5c16636
摘要

Because of their excellent stability and photoelectric properties, perovskite single crystals have been widely applied in fields such as detection and photovoltaics. This study demonstrated a ligand-assisted gas pump method for perovskite crystallization, in which the influence of the pressure change rate on the morphology of perovskite crystals and the quality of ligand-assisted crystallization were investigated. CH 3 NH 3 PbBr 3 single crystals were obtained via the gas pump method assisted with 3-(decyldimethylazaniumyl)propanesulfonate (DPSI) as the ligand for crystallization. With varying rates of environmental pressure variation, the (100) crystal surface exhibited a step-like growth process, and the steps were “center-initiated, outward-expanding”. When the pressure changes rapidly, the steps are wide and steep; as the pressure change rate gradually slows, the slope of the steps becomes gentler. When the growth rate reached 20 Pa/h, the crystal surface became flat, and the growth steps disappeared. The rate of pressure change enables control of the crystal step morphology. To further control crystal growth and quality, the DPSI ligand was employed during the crystal growth process under low-pressure conditions. The −SO 3 – group in DPSI anchors uncoordinated Pb 2+, effectively suppressing solution nucleation. This interaction significantly enhances crystal quality, increases crystal stability, and effectively expands the size of MAPbBr 3 crystals. The optimized MAPbBr 3 detector achieved an outstanding X-ray sensitivity of up to 10798 μC Gy air –1 cm –2 at a bias of 50 V, along with a minimum detectable dose rate of 0.19 μGy air s –1 for 40 kVp X-rays. These advancements have contributed to reducing radiation exposure for patients during medical X-ray diagnostics. The methodology employed in this study enables the fabrication of high-quality crystals through controlled growth rate modulation, demonstrating significant potential for detector applications.
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