Lin Chen-Fu, Huang Kuo-Wei, Chen Yen-Ting, Hsueh Sung-Lin, Li Ming-Hsien, Chen Peter
Department of Photonics, National Cheng Kung University, Tainan 70101, Taiwan.
Photovoltaic Technology Division, Green Energy & Environment Research Laboratories, Industrial Technology Research Institute, Tainan 71150, Taiwan.
Nanomaterials (Basel). 2023 Jul 7;13(13):2024. doi: 10.3390/nano13132024.
X-ray detection has widespread applications in medical diagnosis, non-destructive industrial radiography and safety inspection, and especially, medical diagnosis realized by medical X-ray detectors is presenting an increasing demand. Perovskite materials are excellent candidates for high-energy radiation detection based on their promising material properties such as excellent carrier transport capability and high effective atomic number. In this review paper, we introduce X-ray detectors using all kinds of halide perovskite materials along with various crystal structures and discuss their device performance in detail. Single-crystal perovskite was first fabricated as an active material for X-ray detectors, having excellent performance under X-ray illumination due to its superior photoelectric properties of X-ray attenuation with μm thickness. The X-ray detector based on inorganic perovskite shows good environmental stability and high X-ray sensitivity. Owing to anisotropic carrier transport capability, two-dimensional layered perovskites with a preferred orientation parallel to the substrate can effectively suppress the dark current of the device despite poor light response to X-rays, resulting in lower sensitivity for the device. Double perovskite applied for X-ray detectors shows better attenuation of X-rays due to the introduction of high-atomic-numbered elements. Additionally, its stable crystal structure can effectively lower the dark current of X-ray detectors. Environmentally friendly lead-free perovskite exhibits potential application in X-ray detectors by virtue of its high attenuation of X-rays. In the last section, we specifically introduce the up-scaling process technology for fabricating large-area and thick perovskite films for X-ray detectors, which is critical for the commercialization and mass production of perovskite-based X-ray detectors.
X射线检测在医学诊断、工业无损射线照相和安全检查中有着广泛应用,尤其是通过医用X射线探测器实现的医学诊断需求日益增长。基于其优异的载流子传输能力和高有效原子序数等有前景的材料特性,钙钛矿材料是高能辐射检测的理想候选材料。在这篇综述论文中,我们介绍了使用各种卤化物钙钛矿材料以及不同晶体结构的X射线探测器,并详细讨论了它们的器件性能。单晶钙钛矿最初被制备为X射线探测器的活性材料,由于其在微米厚度下具有优异的X射线衰减光电特性,在X射线照射下表现出出色性能。基于无机钙钛矿的X射线探测器显示出良好的环境稳定性和高X射线灵敏度。由于各向异性的载流子传输能力,与衬底平行具有择优取向的二维层状钙钛矿尽管对X射线的光响应较差,但能有效抑制器件的暗电流,导致器件灵敏度较低。应用于X射线探测器的双钙钛矿由于引入了高原子序数元素,对X射线的衰减效果更好。此外,其稳定的晶体结构能有效降低X射线探测器的暗电流。环保型无铅钙钛矿凭借其对X射线的高衰减特性在X射线探测器中展现出潜在应用。在最后一部分,我们特别介绍了用于制造大面积厚钙钛矿薄膜以用于X射线探测器的放大工艺技术,这对于基于钙钛矿的X射线探测器的商业化和大规模生产至关重要。