Pan Qi, Su Meng, Zhang Zeying, Chen Bingda, Huang Zhandong, Hu Xiaotian, Cai Zheren, Song Yanlin
Key Laboratory of Green Printing, CAS Research/Education Center for Excellence in Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences (ICCAS), Beijing Engineering Research Center of Nanomaterials for Green Printing Technology, Beijing National Laboratory for Molecular Sciences (BNLMS), Beijing, 100190, P. R. China.
University of Remodeling Chinese Academy of Sciences, Beijing, 100049, P. R. China.
Adv Mater. 2020 Apr;32(16):e1907280. doi: 10.1002/adma.201907280. Epub 2020 Feb 28.
Integration of photovoltaic materials directly into 3D light-matter resonance architectures can extend their functionality beyond traditional optoelectronics. Semiconductor structures at subwavelength scale naturally possess optical resonances, which provides the possibility to manipulate light-matter interactions. In this work, a structure and function integrated printing method to remodel 2D film to 3D self-standing facade between predesigned gold electrodes, realizing the advancement of structure and function from 2D to 3D, is demonstrated. Due to the enlarged cross section in the 3D asymmetric rectangular structure, the facade photodetectors possess sensitive light-matter interaction. The single 3D facade photodetectors can measure the incident angle of light in 3D space with a 10° angular resolution. The resonance interaction of the incident light at different illumination angles and the 3D subwavelength photosensitive facade is analyzed by the simulated light flow in the facade. The 3D facade structure enhances the manipulation of the light-matter interaction and extends metasurface nanophotonics to a wider range of materials. The monitoring of dynamic variation is achieved in a single facade photodetector. Together with the flexibility of structure and function integrated printing strategy, three and four branched photodetectors extend the angle detection to omnidirectional ranges, which will be significant for the development of 3D angle-sensing devices.
将光伏材料直接集成到三维光与物质共振结构中,可以将其功能扩展到传统光电子学之外。亚波长尺度的半导体结构自然具有光学共振,这为操纵光与物质的相互作用提供了可能性。在这项工作中,展示了一种结构与功能集成的印刷方法,可将二维薄膜重塑为预先设计的金电极之间的三维自立式立面,实现了结构和功能从二维到三维的进步。由于三维非对称矩形结构中的横截面增大,立面光电探测器具有灵敏的光与物质相互作用。单个三维立面光电探测器能够以10°的角分辨率测量三维空间中光的入射角。通过立面中模拟的光流分析了不同照明角度下入射光与三维亚波长光敏立面的共振相互作用。三维立面结构增强了对光与物质相互作用的操纵,并将超表面纳米光子学扩展到更广泛的材料范围。在单个立面光电探测器中实现了动态变化的监测。结合结构与功能集成印刷策略的灵活性,三个和四个分支的光电探测器将角度检测扩展到全向范围,这对三维角度传感设备的发展具有重要意义。