High-fidelity and clean nanotransfer lithography using structure-embedded and electrostatic-adhesive carriers

材料科学 纳米技术 平版印刷术 基质(水族馆) 摩擦电效应 制作 光掩模 光刻 纳米结构 光电子学 抵抗 复合材料 图层(电子) 替代医学 病理 地质学 海洋学 医学
作者
Zhuofei Gan,Jingxuan Cai,Zhao Sun,Liyang Chen,Chuying Sun,Junyi Yu,Zeyu Liang,Siyi Min,Fei Han,Yu Liu,Xing Cheng,Shuhui Yu,Dehu Cui,Wen‐Di Li
出处
期刊:Microsystems & Nanoengineering [Springer Nature]
卷期号:9 (1) 被引量:10
标识
DOI:10.1038/s41378-022-00476-x
摘要

Metallic nanostructures are becoming increasingly important for both fundamental research and practical devices. Many emerging applications employing metallic nanostructures often involve unconventional substrates that are flexible or nonplanar, making direct lithographic fabrication very difficult. An alternative approach is to transfer prefabricated structures from a conventional substrate; however, it is still challenging to maintain high fidelity and a high yield in the transfer process. In this paper, we propose a high-fidelity, clean nanotransfer lithography method that addresses the above challenges by employing a polyvinyl acetate (PVA) film as the transferring carrier and promoting electrostatic adhesion through triboelectric charging. The PVA film embeds the transferred metallic nanostructures and maintains their spacing with a remarkably low variation of <1%. When separating the PVA film from the donor substrate, electrostatic charges are generated due to triboelectric charging and facilitate adhesion to the receiver substrate, resulting in a high large-area transfer yield of up to 99.93%. We successfully transferred the metallic structures of a variety of materials (Au, Cu, Pd, etc.) with different geometries with a <50-nm spacing, high aspect ratio (>2), and complex 3D structures. Moreover, the thin and flexible carrier film enables transfer on highly curved surfaces, such as a single-mode optical fiber with a curvature radius of 62.5 μm. With this strategy, we demonstrate the transfer of metallic nanostructures for a compact spectrometer with Cu nanogratings transferred on a convex lens and for surface-enhanced Raman spectroscopy (SERS) characterization on graphene with reliable responsiveness.

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