Ganesh Kumar Baskaran, Melikov Rustamzhon, Mohammadi Aria Mohammad, Ural Yalcin Aybike, Begar Efe, Sadeghi Sadra, Guven Kaan, Nizamoglu Sedat
Department of Electrical and Electronics Engineering, Koc University, Istanbul 34450, Turkey.
Graduate School of Biomedical Engineering, Koc University, Istanbul 34450, Turkey.
ACS Biomater Sci Eng. 2018 Apr 9;4(4):1463-1470. doi: 10.1021/acsbiomaterials.8b00040. Epub 2018 Mar 7.
Lithography, the transfer of patterns to a film or substrate, is the basis by which many modern technological devices and components are produced. However, established lithographic approaches generally use complex techniques, expensive equipment, and advanced materials. Here, we introduce a water-based microcontact printing method using silk that is simple, inexpensive, ecofriendly, and recyclable. Whereas the traditional microcontact printing technique facilitates only negative lithography, the synergetic interaction of the silk, water, and common chemicals in our technique enables both positive and negative patterning using a single stamp. Among diverse application possibilities, we exemplify a proof of concept of the method through optimizing its metal lift-off process and demonstrate the fabrication of electromagnetic metamaterial elements on both solid and flexible substrates. The results indicate that the method demonstrated herein is universally applicable to device production and technology development.
光刻技术,即将图案转移到薄膜或基板上的技术,是许多现代技术设备和组件生产的基础。然而,现有的光刻方法通常使用复杂的技术、昂贵的设备和先进的材料。在此,我们介绍一种基于水的微接触印刷方法,该方法使用丝绸,简单、廉价、环保且可回收。传统的微接触印刷技术仅有助于负光刻,而我们技术中丝绸、水和常见化学物质的协同相互作用使得使用单个印章即可实现正光刻和负光刻。在各种可能的应用中,我们通过优化其金属剥离工艺来举例说明该方法的概念验证,并展示了在固体和柔性基板上制造电磁超材料元件。结果表明,本文所展示的方法普遍适用于器件生产和技术开发。