Sengupta Joydip, Hussain Chaudhery Mustansar
Department of Electronic Science, Jogesh Chandra Chaudhuri College, Kolkata 700033, India.
Department of Chemistry and Environmental Science, New Jersey Institute of Technology, Newark, NJ 07102, USA.
Nanomaterials (Basel). 2022 Sep 10;12(18):3146. doi: 10.3390/nano12183146.
Graphene achieved a peerless level among nanomaterials in terms of its application in electronic devices, owing to its fascinating and novel properties. Its large surface area and high electrical conductivity combine to create high-power batteries. In addition, because of its high optical transmittance, low sheet resistance, and the possibility of transferring it onto plastic substrates, graphene is also employed as a replacement for indium tin oxide (ITO) in making electrodes for touch screens. Moreover, it was observed that graphene enhances the performance of transparent flexible electronic modules due to its higher mobility, minimal light absorbance, and superior mechanical properties. Graphene is even considered a potential substitute for the post-Si electronics era, where a high-performance graphene-based field-effect transistor (GFET) can be fabricated to detect the lethal SARS-CoV-2. Hence, graphene incorporation in electronic devices can facilitate immense device structure/performance advancements. In the light of the aforementioned facts, this review critically debates graphene as a prime candidate for the fabrication and performance enhancement of electronic devices, and its future applicability in various potential applications.
就其在电子设备中的应用而言,石墨烯因其迷人且新颖的特性,在纳米材料中达到了无与伦比的水平。它的大表面积和高导电性相结合,造就了高功率电池。此外,由于其高光学透过率、低薄层电阻以及能够转移到塑料基板上的可能性,石墨烯还被用作触摸屏电极制造中铟锡氧化物(ITO)的替代品。此外,据观察,由于其更高的迁移率、最小的光吸收率和卓越的机械性能,石墨烯提高了透明柔性电子模块的性能。石墨烯甚至被认为是后硅电子时代的潜在替代品,在这个时代,可以制造出高性能的基于石墨烯的场效应晶体管(GFET)来检测致命的严重急性呼吸综合征冠状病毒2(SARS-CoV-2)。因此,将石墨烯纳入电子设备可以推动巨大的器件结构/性能进步。鉴于上述事实,本综述批判性地讨论了石墨烯作为制造和提高电子设备性能的主要候选材料,以及其在各种潜在应用中的未来适用性。