Chen Huiwen, Zhu Ziyao, Zhao Bo, Huang Weixiong, Qu Geping, Xu Zong-Xiang, Yu Xue-Feng, Xiao Quanlan, Yang Shihe, Li Yunlong
Materials Interfaces Center, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen, 518055, China.
School of Materials Science and Engineering, Anhui University of Science & Technology, Huainan, 232001, China.
Adv Sci (Weinh). 2024 Jul;11(28):e2309185. doi: 10.1002/advs.202309185. Epub 2024 May 13.
Quasi-2D perovskite quantum wells are increasingly recognized as promising candidates for direct-conversion X-ray detection. However, the fabrication of oriented and uniformly thick quasi-2D perovskite films, crucial for effective high-energy X-ray detection, is hindered by the inherent challenges of preferential crystallization at the gas-liquid interface, resulting in poor film quality. In addressing this limitation, a carbonyl array-synergized crystallization (CSC) strategy is employed for the fabrication of thick films of a quasi-2D Ruddlesden-Popper (RP) phase perovskite, specifically PEAMAPbI. The CSC strategy involves incorporating two forms of carbonyls in the perovskite precursor, generating large and dense intermediates. This design reduces the nucleation rate at the gas-liquid interface, enhances the binding energies of Pb at (202) and (111) planes, and passivates ion vacancy defects. Consequently, the construction of high-quality thick films of PEAMAPbI RP perovskite quantum wells is achieved and characterized by vertical orientation and a pure well-width distribution. The corresponding PEAMAPbI RP perovskite X-ray detectors exhibit multi-dimensional advantages in performance compared to previous approaches and commercially available a-Se detectors. This CSC strategy promotes 2D perovskites as a candidate for next-generation large-area flat-panel X-ray detection systems.
准二维钙钛矿量子阱越来越被认为是直接转换X射线探测的有前途的候选材料。然而,对于有效的高能X射线探测至关重要的取向均匀且厚度一致的准二维钙钛矿薄膜的制备,受到气液界面优先结晶的固有挑战的阻碍,导致薄膜质量较差。为了解决这一限制,采用了羰基阵列协同结晶(CSC)策略来制备准二维Ruddlesden-Popper(RP)相钙钛矿的厚膜,特别是PEAMAPbI。CSC策略包括在钙钛矿前驱体中引入两种形式的羰基,生成大而密集的中间体。这种设计降低了气液界面的成核速率,增强了Pb在(202)和(111)平面的结合能,并钝化了离子空位缺陷。因此,实现了高质量的PEAMAPbI RP钙钛矿量子阱厚膜的构建,其特征在于垂直取向和纯阱宽分布。与先前的方法和市售的a-Se探测器相比,相应的PEAMAPbI RP钙钛矿X射线探测器在性能上具有多维度优势。这种CSC策略推动了二维钙钛矿成为下一代大面积平板X射线探测系统的候选材料。