Wu Haijuan, Lin Zhicheng, Chen Xiangyu, Tan Chao, Hu Guohua, Wang Zegao
College of Materials Science and Engineering, Sichuan University, Chengdu 610065, China.
Department of Electronic Engineering, The Chinese University of Hong Kong, Hong Kong SAR, Shatin 999077, China.
ACS Appl Mater Interfaces. 2025 Jun 25;17(25):37035-37042. doi: 10.1021/acsami.5c07538. Epub 2025 Jun 10.
Polarization photodetectors suffer from insufficient sensitivity, slow response speed, and limited spectral response range. Therefore, the development of new photodetectors with broad spectral response, high sensitivity, excellent polarization sensitivity, and low cost has become the focus of the current research field. Herein, we report an InSe/CIPS heterojunction-based approach for high-performance photodetection, polarization-sensitive photodetection, and polarization imaging in the visible to near-infrared region (400-808 nm). Its high responsivity (41.42 A/W at 532 nm and 18.95 A/W at 808 nm) and specific detectivity (9.79 × 10 Jones at 532 nm and 4.51 × 10 Jones at 808 nm) outperforms most two-dimensional heterojunction photodetectors. In addition, the heterojunction has a fast response time (0.17/0.33 s at 400 nm) and broadband polarization detection (6.04 at 400 nm and 5.7 at 808 nm). The proposed hierarchical fusion strategy effectively coordinates the multiangle polarization information, improves the response of polarization imaging detectors to signals under complex optical fields, and provides an effective image processing framework to enhance the environmental adaptability of polarization detectors, which further promotes the application of polarization detectors in high-precision photoelectric detection.
偏振光电探测器存在灵敏度不足、响应速度慢和光谱响应范围有限等问题。因此,开发具有宽光谱响应、高灵敏度、优异偏振灵敏度和低成本的新型光电探测器已成为当前研究领域的重点。在此,我们报道了一种基于InSe/CIPS异质结的方法,用于在可见光到近红外区域(400-808nm)进行高性能光电探测、偏振敏感光电探测和偏振成像。其高响应度(532nm处为41.42A/W,808nm处为18.95A/W)和比探测率(532nm处为9.79×10琼斯,808nm处为4.51×10琼斯)优于大多数二维异质结光电探测器。此外,该异质结具有快速响应时间(400nm处为0.17/0.33s)和宽带偏振检测(400nm处为6.04,808nm处为5.7)。所提出的分层融合策略有效地协调了多角度偏振信息,提高了偏振成像探测器在复杂光场下对信号的响应,并提供了一个有效的图像处理框架来增强偏振探测器的环境适应性,这进一步推动了偏振探测器在高精度光电探测中的应用。