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用于倾斜超表面纳米结构的电场驱动生成式纳米压印

Electric-Field-Driven Generative Nanoimprinting for Tilted Metasurface Nanostructures.

作者信息

Fan Yu, Wang Chunhui, Tian Hongmiao, Chen Xiaoming, Li Ben Q, Wang Zhaomin, Li Xiangming, Chen Xiaoliang, Shao Jinyou

机构信息

Micro- and Nano-Technology Research Center, State Key Laboratory for Manufacturing Systems Engineering, Xi'an Jiaotong University, Xi'an, 710049, People's Republic of China.

Department of Mechanical Engineering, College of Engineering and Computer Science, University of Michigan-Dearborn, Dearborn, MI, 48128, USA.

出版信息

Nanomicro Lett. 2025 Jul 28;18(1):12. doi: 10.1007/s40820-025-01857-3.

Abstract

Tilted metasurface nanostructures, with excellent physical properties and enormous application potential, pose an urgent need for manufacturing methods. Here, electric-field-driven generative-nanoimprinting technique is proposed. The electric field applied between the template and the substrate drives the contact, tilting, filling, and holding processes. By accurately controlling the introduced included angle between the flexible template and the substrate, tilted nanostructures with a controllable angle are imprinted onto the substrate, although they are vertical on the template. By flexibly adjusting the electric field intensity and the included angle, large-area uniform-tilted, gradient-tilted, and high-angle-tilted nanostructures are fabricated. In contrast to traditional replication, the morphology of the nanoimprinting structure is extended to customized control. This work provides a cost-effective, efficient, and versatile technology for the fabrication of various large-area tilted metasurface structures. As an illustration, a tilted nanograting with a high coupling efficiency is fabricated and integrated into augmented reality displays, demonstrating superior imaging quality.

摘要

倾斜的超表面纳米结构具有优异的物理性能和巨大的应用潜力,因此迫切需要制造方法。在此,提出了电场驱动的生成式纳米压印技术。施加在模板和基板之间的电场驱动接触、倾斜、填充和保持过程。通过精确控制柔性模板与基板之间引入的夹角,尽管纳米结构在模板上是垂直的,但具有可控角度的倾斜纳米结构被压印到基板上。通过灵活调整电场强度和夹角,可以制造大面积均匀倾斜、梯度倾斜和大角度倾斜的纳米结构。与传统复制相比,纳米压印结构的形态扩展到了定制控制。这项工作为制造各种大面积倾斜超表面结构提供了一种经济高效且通用的技术。作为例证,制造了具有高耦合效率的倾斜纳米光栅并将其集成到增强现实显示器中,展示了卓越的成像质量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e4c/12304336/97f62723f541/40820_2025_1857_Fig1_HTML.jpg

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