Kim Hyuntai
Electrical and Electronic Convergence Department, Hongik University, Sejong 30016, Korea.
Nanomaterials (Basel). 2021 Jan 22;11(2):281. doi: 10.3390/nano11020281.
Line focusing, which collects light into a line rather than a single point, has an advantage on variable fields such as machining and imaging. The 1-dimensional metallic zone plate is one of the candidates for line focusing, which is ultra-thin and simple to fabricate. Metallic nano-slits can replace the metal blocked region to increase the efficiency, however, the efficiency and stability are still low. Therefore, this paper proposes a structure with an additional dielectric layer to protect the metallic nano-slit layer-a buried metallic wire structure-and verify the idea based on numerical simulations. Two structures are proposed. In terms of stability, a flat surface structure is proposed and a corrugated surface structure with a consistent thickness with the nano-slit is proposed which has low fabrication difficulty. The optimization of the buried wire structure and performance after applying the buried wire structure to the dual-line focusing plate is calculated by numerical simulation. Finally, it was shown that the electric field intensity was 2.13 times greater.
线聚焦是将光聚焦成一条线而不是一个单点,在诸如加工和成像等可变场中具有优势。一维金属波带片是线聚焦的候选方案之一,它超薄且易于制造。金属纳米狭缝可以替代金属阻挡区域以提高效率,然而,效率和稳定性仍然较低。因此,本文提出一种具有附加介电层以保护金属纳米狭缝层的结构——埋入式金属线结构,并基于数值模拟验证该想法。提出了两种结构。在稳定性方面,提出了一种平面结构,并提出了一种与纳米狭缝厚度一致的波纹表面结构,其制造难度较低。通过数值模拟计算了埋入式金属线结构的优化以及将埋入式金属线结构应用于双线聚焦板后的性能。最后,结果表明电场强度提高了2.13倍。