化学
纳米光子学
跟踪(教育)
对象(语法)
纳米技术
人工智能
计算机科学
心理学
教育学
材料科学
作者
Jianpeng Ma,Ziguang Zhao,Yingjie Zhao,Jingyuan Zhang,Jiangang Feng,Hanfei Gao,Junchuan Yang,Meng Yuan,Zhongzhong Qin,Ke He,Tenglong Li,Junli Bai,Wei Li,Wei Xiao,Zihao Huang,Fucheng Li,Lei Jiang,Yuchen Wu
摘要
Subwavelength resonant nanostructures have facilitated strong light–matter interactions and tunable degrees of freedom of light, such as spectrum, polarization, and direction, thus boosting photonic applications toward light emission, manipulation, and detection. For photodetection, resonant nanostructures have enabled emerging technologies, such as light detection and ranging, spectrometers, and polarimeters, within an ultracompact footprint. However, resonant nanophotonics usually relies on nanofabrication technology, which suffers from the trade-offs between precision and scalability. Here, we first realize the self-assembly of subwavelength resonant nanostructures of metal-halide perovskites for spatial object localization and tracking. By steering crystallization along capillary corner bridges localized at edges, we achieve single crystallinity, subwavelength size, and resonant coupling between perovskite nanowires, thus leading to an angle-resolved photodetector with an angular resolution of 0.523°. Furthermore, we integrate multiple pairs of coupled resonant nanowires along two orthogonal orientations to form angle-resolved photodetector arrays for spatial light localization of both static and moving objects with an error of less than 0.6 cm. These findings create a platform for self-assembled resonant nanostructures, thus paving the way for multifunctional nanophotonic and optoelectronic devices.
科研通智能强力驱动
Strongly Powered by AbleSci AI