Siyin Dong, Zhenghui Fan, Wei Wei, Shujie Tie, Ruihan Yuan, Bin Zhou, Ning Yang, Xiaojia Zheng, Liang Shen
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引用次数: 0
摘要
与三维包晶相比,准二维(Q-2D)包晶表现出卓越的光电特性,并减少了离子迁移,使其成为制造高灵敏度和高稳定性 X 射线探测器的理想材料。然而,要获得具有足够厚度、可高效吸收 X 射线的高质量磷灰石薄膜仍具有挑战性。在本文中,我们介绍了一种在由甲胺(CH3NH2,MA)和氨(NH3)组成的混合气氛中调节 Q-2D 包晶体生长的新方法,从而成功制备出厚度达数百微米的高质量薄膜。随后,我们将透辉石层与二氧化钛(TiO2)结合在一起,建立了一个异质结 X 射线探测器。对包晶石晶体生长的精确调控和对器件结构的精心设计协同增强了 X 射线探测器的电阻率和载流子传输特性,从而实现了低维包晶石 X 射线探测器的超高灵敏度(29721.4 μC Gyair-1 cm-2)和 20.9 nGyair s-1 的低检测限。我们进一步展示了一种平板 X 射线成像仪(FPXI),其空间分辨率高达 3.6 lp mm-1,在低 X 射线剂量下具有出色的 X 射线成像能力。这项研究提出了实现高性能 Q-2D 包晶 FPXI 的有效方法,为成像技术的各种应用带来了巨大前景。
Bottom-up construction of low-dimensional perovskite thick films for high-performance X-ray detection and imaging
Quasi-two-dimensional (Q-2D) perovskite exhibits exceptional photoelectric properties and demonstrates reduced ion migration compared to 3D perovskite, making it a promising material for the fabrication of highly sensitive and stable X-ray detectors. However, achieving high-quality perovskite films with sufficient thickness for efficient X-ray absorption remains challenging. Herein, we present a novel approach to regulate the growth of Q-2D perovskite crystals in a mixed atmosphere comprising methylamine (CH3NH2, MA) and ammonia (NH3), resulting in the successful fabrication of high-quality films with a thickness of hundreds of micrometers. Subsequently, we build a heterojunction X-ray detector by incorporating the perovskite layer with titanium dioxide (TiO2). The precise regulation of perovskite crystal growth and the meticulous design of the device structure synergistically enhance the resistivity and carrier transport properties of the X-ray detector, resulting in an ultrahigh sensitivity (29721.4 μC Gyair−1 cm−2) for low-dimensional perovskite X-ray detectors and a low detection limit of 20.9 nGyair s−1. We have further demonstrated a flat panel X-ray imager (FPXI) showing a high spatial resolution of 3.6 lp mm−1 and outstanding X-ray imaging capability under low X-ray doses. This work presents an effective methodology for achieving high-performance Q-2D perovskite FPXIs that holds great promise for various applications in imaging technology.