Zhu Yechuan, Zhou Shun, Wang Zhiheng, Yu Yiting, Yuan Weizheng, Liu Weiguo
Shaanxi Province Key Laboratory of Thin Films Technology and Optical Test, Xi'an Technological University, Xi'an 710021, China.
Key Laboratory of Micro/Nano Systems for Aerospace, Ministry of Education, Northwestern Polytechnical University, Xi'an 710072, China.
Nanomaterials (Basel). 2019 Dec 18;10(1):3. doi: 10.3390/nano10010003.
Conventional optics suffer from the diffraction limit. Our recent work has predicted a nanoslit-based two-dimensional (2D) lens with transverse-electric (TE) polarized design that is capable of realizing the super-resolution focusing of light beyond the diffraction limit in the quasi-far field. Furthermore, the super-resolution capability can be kept in a high-refractive-index dielectric over a wide wavelength range from ultraviolet to visible light. Here, we systematically investigate the influence of various factors on the super-resolution focusing performance of the lens. Factors such as lens aperture, focal length and nanoslit length are considered. In particular, the influence of nanoslit length on lens focusing was ignored in the previous reports about nanoslit-based 2D lenses, since nanoslit length was assumed to be infinite. The numerical results using the finite-difference time-domain (FDTD) method demonstrate that the super-resolution focusing capability of a nanoslit-based 2D lens increases with the lens aperture and reduces with the increase of the lens focal length. On the other hand, it is notable that the length of the lens focus is not equal to but smaller than that of the nanoslits. Therefore, in order to achieve a desired focus length, a lens should be designed with longer nanoslits.
传统光学受衍射极限的限制。我们最近的研究预测了一种基于纳米狭缝的二维(2D)透镜,其采用横向电(TE)偏振设计,能够在准远场实现超越衍射极限的光超分辨率聚焦。此外,在从紫外光到可见光的宽波长范围内,超分辨率能力可以在高折射率电介质中保持。在此,我们系统地研究了各种因素对该透镜超分辨率聚焦性能的影响。考虑了诸如透镜孔径、焦距和纳米狭缝长度等因素。特别是,在先前关于基于纳米狭缝的二维透镜的报道中,由于假设纳米狭缝长度为无限大,纳米狭缝长度对透镜聚焦的影响被忽略了。使用时域有限差分(FDTD)方法的数值结果表明,基于纳米狭缝的二维透镜的超分辨率聚焦能力随透镜孔径的增加而增强,随透镜焦距的增加而降低。另一方面,值得注意的是,透镜焦点的长度不等于纳米狭缝的长度,而是小于纳米狭缝的长度。因此,为了实现所需的焦距,应设计具有更长纳米狭缝的透镜。