Department of Physics, Nanchang University, Nanchang 330031, People's Republic of China. Key Laboratory of Advanced Photonic and Electronic Materials and School of Electronic Science & Engineering, Nanjing University, Nanjing 210093, People's Republic of China.
Nanotechnology. 2019 Dec 6;30(49):495204. doi: 10.1088/1361-6528/ab4245. Epub 2019 Sep 6.
Metallic cavities show substantial advantages in light confinement, providing opportunities to modulate the optical resonances and absorption. Here, we report on the configuration of horizontally aligned ZnO-nanowires-based metallic cavity ensemble with a light to dark current ratio of ∼1000. An enhanced polarization photodetection ratio of transverse electric (TE) to transverse magnetic (TM) was experimentally observed compared to the single ZnO nanowire photodetector. Finite difference time domain simulation was performed on the metallic cavities, showing the distinct resonance behaviors under TE and TM light. The confinement by the multi-reflection and optical resonances between the metallic claddings contribute to the high anisotropy ratio. Furthermore, the polarized light absorption in the metallic cavity was studied as well as in the naked nanowire, which reveal a significant dependence on the cavity diameter and wavelength. For the metallic cavities, the absorption ratio of TE to TM show an enhanced value in the range of 300-500 nm wavelength and 85-150 diameter and a reversed value in the range of 400-500 nm wavelength and 17-50 diameter. While for the naked nanowires, the ratio show an apparently opposite value in these two regions. The presented metallic cavities demonstrate a specific paradigm of optical engineering in nanoscale and potentially helps the development of optoelectronic devices.
金属腔在光限制方面具有显著优势,为调节光学共振和吸收提供了机会。在这里,我们报告了具有约 1000 的光暗电流比的水平排列的 ZnO 纳米线基金属腔组件的配置。与单个 ZnO 纳米线光电探测器相比,实验观察到横向电场 (TE) 与横向磁场 (TM) 的增强偏振光电探测比。对金属腔进行了有限差分时域模拟,显示了在 TE 和 TM 光下的明显共振行为。金属包层之间的多次反射和光学共振的限制导致了高各向异性比。此外,还研究了金属腔和裸露纳米线中的偏振光吸收,这表明吸收与腔直径和波长有显著的依赖关系。对于金属腔,在 300-500nm 波长和 85-150nm 直径范围内,TE 与 TM 的吸收比表现出增强的值,而在 400-500nm 波长和 17-50nm 直径范围内则表现出相反的值。而对于裸露的纳米线,在这两个区域,比值表现出明显相反的值。所提出的金属腔展示了纳米尺度光学工程的特定范例,并有可能有助于光电设备的发展。