Zhao Kai, Yang Juehan, Wang Pan, Zhou Ziqi, Long Haoran, Xin Kaiyao, Liu Can, Han Zheng, Liu Kaihui, Wei Zhongming
State Key Laboratory of Superlattices and Microstructures, Institute of Semiconductors, Chinese Academy of Sciences, Beijing, 100083, China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing, 100049, China.
Adv Mater. 2024 Nov;36(46):e2406559. doi: 10.1002/adma.202406559. Epub 2024 Sep 19.
Solar-blind ultraviolet (UV) detection plays a critical role in imaging and communication due to its low-noise background, high signal-to-noise ratio, and strong anti-interference capabilities. Detecting the polarization state of UV light can enhance image information and expand the communication dimension. Although polarization detection is explored in visible and infrared light, and applied in fields such as astrophysics and submarine seismic wave detection, solar-blind UV polarization detection remains largely unreported. This is primarily due to the challenge of creating UV polarizers with high transmittance, high extinction ratio, and strong resistance to UV radiation. In this study, it is discovered that the space symmetry breaking of the β-GaO's b-c plane results in a significant optical absorption dichroic ratio. Leveraging β-GaO's high solar-blind UV response, a lensless solar-blind UV polarization-sensitive photodetector, circumventing the challenges associated with solar-blind UV polarizers is designed. This photodetector exhibits an exceptionally high intrinsic polarization ratio under 254 nm linearly polarized light, approximately two orders of magnitude higher than other reported nanomaterial-based polarization-sensitive photodetectors. Additionally, it demonstrates significant advantages in solar-blind UV imaging and light communication. This work introduces a novel strategy for solar-blind ultraviolet polarization detection and offers a promising approach for solar-blind light communication.
日盲紫外(UV)探测因其低噪声背景、高信噪比和强抗干扰能力,在成像和通信中发挥着关键作用。检测紫外光的偏振态可以增强图像信息并扩展通信维度。尽管偏振探测在可见光和红外光领域已有研究,并应用于天体物理学和海底地震波探测等领域,但日盲紫外偏振探测仍鲜有报道。这主要是由于制造具有高透过率、高消光比和强抗紫外辐射能力的紫外偏振器存在挑战。在本研究中,发现β-GaO的b-c平面的空间对称性破缺导致了显著的光吸收二向色比。利用β-GaO的高日盲紫外响应,设计了一种无透镜日盲紫外偏振敏感光电探测器,克服了与日盲紫外偏振器相关的挑战。该光电探测器在254nm线偏振光下表现出极高的固有偏振比,比其他已报道的基于纳米材料的偏振敏感光电探测器高出约两个数量级。此外,它在日盲紫外成像和光通信方面具有显著优势。这项工作介绍了一种日盲紫外偏振探测的新策略,并为日盲光通信提供了一种有前景的方法。