{"title":"基于对称破缺异质结的高灵敏度多色非冷光响应与成像","authors":"Liuping Liu, Sheng Ni, Fengyi Zhu, Yuling Zhu, Changlong Liu, Xutao Zhang, He Zhu, Jiazhen Zhang, Donghai Zhang, Changyi Pan, Li Han, Weiwei Tang, Guanhai Li, Haibo Shu, Xiaoshuang Chen","doi":"10.1002/inf2.12641","DOIUrl":null,"url":null,"abstract":"<p>Multicolor photodetection, essential for applications in infrared imaging, environmental monitoring, and spectral analysis, is often limited by the narrow bandgaps of conventional materials, which struggle with speed, sensitivity, and room-temperature operation. We address these issues with a multicolor uncooled photodetector based on an asymmetric Au/SnS/Gr vertical heterojunction with inversion-symmetry breaking. This design utilizes the complementary bandgaps of SnS and graphene to enhance the efficiency of carriers' transport through consistently oriented built-in electric fields, achieving significant advancements in directional photoresponse. The device demonstrates highly sensitive photoelectric detection performance, such as a responsivity (<i>R</i>) of 55.4–89.7 A W<sup>–1</sup> with rapid response times of approximately 104 μs, and exceptional detectivity (<i>D*</i>) of 2.38 × 10<sup>10</sup> Jones ~8.19 × 10<sup>13</sup> Jones from visible (520 nm) to infrared (2000 nm) light, making it suitable for applications demanding an imaging resolution of ~0.5 mm. Additionally, the comparative analysis reveals that the asymmetric vertical heterojunction outperforms its counterparts, exhibiting approximately 9-fold the photoresponse of symmetric vertical heterojunction and almost 100-fold that of symmetric horizontal heterojunction. 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Additionally, the comparative analysis reveals that the asymmetric vertical heterojunction outperforms its counterparts, exhibiting approximately 9-fold the photoresponse of symmetric vertical heterojunction and almost 100-fold that of symmetric horizontal heterojunction. 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引用次数: 0
摘要
多色光探测在红外成像、环境监测和光谱分析中的应用至关重要,但通常受到传统材料窄带隙的限制,在速度、灵敏度和室温操作方面存在困难。我们用一种多色非冷却光电探测器解决了这些问题,该探测器基于具有逆对称破缺的不对称Au/SnS/Gr垂直异质结。该设计利用SnS和石墨烯的互补带隙来提高载流子通过始终定向的内置电场的传输效率,在定向光响应方面取得了重大进展。该器件具有高灵敏度的光电探测性能,如响应率(R)为55.4-89.7 a W-1,快速响应时间约为104 μs,从可见光(520 nm)到红外光(2000 nm)的探测率(D*)为2.38 × 1010 Jones ~8.19 × 1013 Jones,使其适用于要求成像分辨率为~0.5 mm的应用。此外,对比分析表明,不对称垂直异质结的光响应性能优于对称垂直异质结,大约是对称水平异质结的9倍,几乎是对称水平异质结的100倍。这种高灵敏度的多色探测器在先进的多功能目标检测和成像识别系统中具有重要的应用前景。
Highly sensitive multicolor uncooled photoresponse and imaging based on symmetry breaking heterojunction
Multicolor photodetection, essential for applications in infrared imaging, environmental monitoring, and spectral analysis, is often limited by the narrow bandgaps of conventional materials, which struggle with speed, sensitivity, and room-temperature operation. We address these issues with a multicolor uncooled photodetector based on an asymmetric Au/SnS/Gr vertical heterojunction with inversion-symmetry breaking. This design utilizes the complementary bandgaps of SnS and graphene to enhance the efficiency of carriers' transport through consistently oriented built-in electric fields, achieving significant advancements in directional photoresponse. The device demonstrates highly sensitive photoelectric detection performance, such as a responsivity (R) of 55.4–89.7 A W–1 with rapid response times of approximately 104 μs, and exceptional detectivity (D*) of 2.38 × 1010 Jones ~8.19 × 1013 Jones from visible (520 nm) to infrared (2000 nm) light, making it suitable for applications demanding an imaging resolution of ~0.5 mm. Additionally, the comparative analysis reveals that the asymmetric vertical heterojunction outperforms its counterparts, exhibiting approximately 9-fold the photoresponse of symmetric vertical heterojunction and almost 100-fold that of symmetric horizontal heterojunction. This highly sensitive multicolor detector holds significant promise for applications in advanced versatile object detection and imaging recognition systems.
期刊介绍:
InfoMat, an interdisciplinary and open-access journal, caters to the growing scientific interest in novel materials with unique electrical, optical, and magnetic properties, focusing on their applications in the rapid advancement of information technology. The journal serves as a high-quality platform for researchers across diverse scientific areas to share their findings, critical opinions, and foster collaboration between the materials science and information technology communities.