Yang Yi, Wei Yuhong, Guo Zhanfeng, Hou Weiwei, Liu Yingjie, Tian He, Ren Tian-Ling
School of Integrated Circuits & Beijing National Research Center for Information Science and Technology (BNRist), Tsinghua University, Beijing, 100084, China.
School of Materials Science and Engineering, Tsinghua University, Beijing, 100084, China.
Small Methods. 2022 Oct;6(10):e2200671. doi: 10.1002/smtd.202200671. Epub 2022 Aug 25.
Graphene, as an emerging 2D material, has been playing an important role in flexible electronics since its discovery in 2004. The representative fabrication methods of graphene include mechanical exfoliation, liquid-phase exfoliation, chemical vapor deposition, redox reaction, etc. Based on its excellent mechanical, electrical, thermo-acoustical, optical, and other properties, graphene has made a great progress in the development of mechanical sensors, microphone, sound source, electrophysiological detection, solar cells, synaptic transistors, light-emitting devices, and so on. In different application fields, large-scale, low-cost, high-quality, and excellent performance are important factors that limit the industrialization development of graphene. Therefore, laser scribing technology, roll-to-roll technology is used to reduce the cost. High-quality graphene can be obtained through chemical vapor deposition processes. The performance can be improved through the design of structure of the devices, and the homogeneity and stability of devices can be achieved by mechanized machining means. In total, graphene devices show promising prospect for the practical fields of sports monitoring, health detection, voice recognition, energy, etc. There is a hot issue for industry to create and maintain the market competitiveness of graphene products through increasing its versatility and killer application fields.
自2004年被发现以来,石墨烯作为一种新兴的二维材料,在柔性电子学领域一直发挥着重要作用。石墨烯的代表性制备方法包括机械剥离、液相剥离、化学气相沉积、氧化还原反应等。基于其优异的机械、电学、热声学、光学等性能,石墨烯在机械传感器、麦克风、声源、电生理检测、太阳能电池、突触晶体管、发光器件等的发展中取得了巨大进展。在不同的应用领域,大规模、低成本、高质量以及优异的性能是限制石墨烯产业化发展的重要因素。因此,采用激光划刻技术、卷对卷技术来降低成本。通过化学气相沉积工艺可获得高质量的石墨烯。通过器件结构设计可提高性能,通过机械化加工手段可实现器件的均匀性和稳定性。总体而言,石墨烯器件在运动监测、健康检测、语音识别、能源等实际领域展现出广阔前景。通过增加其多功能性和关键应用领域来创造并维持石墨烯产品的市场竞争力,是该行业的一个热点问题。