Kim Yeonhoo, Kim Taehoon, Lee Jinwoo, Choi Yong Seok, Moon Joonhee, Park Seo Yun, Lee Tae Hyung, Park Hoon Kee, Lee Sol A, Kwon Min Sang, Byun Hyung-Gi, Lee Jong-Heun, Lee Myoung-Gyu, Hong Byung Hee, Jang Ho Won
Department of Materials Science and Engineering, Research Institute of Advanced Materials, Seoul National University, Seoul, 08826, Republic of Korea.
Center for Integrated Nanotechnologies, Los Alamos National Laboratory, Los Alamos, NM, 87544, USA.
Adv Mater. 2021 Jan;33(2):e2004827. doi: 10.1002/adma.202004827. Epub 2020 Nov 20.
2D materials, such as graphene, exhibit great potential as functional materials for numerous novel applications due to their excellent properties. The grafting of conventional micropatterning techniques on new types of electronic devices is required to fully utilize the unique nature of graphene. However, the conventional lithography and polymer-supported transfer methods often induce the contamination and damage of the graphene surface due to polymer residues and harsh wet-transfer conditions. Herein, a novel strategy to obtain micropatterned graphene on polymer substrates using a direct curing process is demonstrated. Employing this method, entirely flexible, transparent, well-defined self-activated graphene sensor arrays, capable of gas discrimination without external heating, are fabricated on 4 in. wafer-scale substrates. Finite element method simulations show the potential of this patterning technique to maximize the performance of the sensor devices when the active channels of the 2D material are suspended and nanoscaled. This study contributes considerably to the development of flexible functional electronic devices based on 2D materials.
二维材料,如石墨烯,由于其优异的性能,作为功能材料在众多新型应用中展现出巨大潜力。为了充分利用石墨烯的独特性质,需要将传统微图案化技术应用于新型电子器件。然而,传统光刻和聚合物支撑转移方法由于聚合物残留和苛刻的湿法转移条件,常常会导致石墨烯表面的污染和损伤。在此,展示了一种使用直接固化工艺在聚合物基板上获得微图案化石墨烯的新策略。采用这种方法,在4英寸晶圆级基板上制造出了完全柔性、透明、轮廓清晰的自激活石墨烯传感器阵列,该阵列无需外部加热就能进行气体辨别。有限元方法模拟表明,当二维材料的有源通道悬空且为纳米级时,这种图案化技术有潜力使传感器器件的性能最大化。这项研究对基于二维材料的柔性功能电子器件的发展做出了重大贡献。