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用于生物医学应用的石墨烯场效应晶体管:现状与未来前景

Graphene Field Effect Transistors for Biomedical Applications: Current Status and Future Prospects.

作者信息

Forsyth Rhiannan, Devadoss Anitha, Guy Owen J

机构信息

Centre for Nanohealth, College of Engineering, Swansea University, Swansea SA2 8PP, UK.

出版信息

Diagnostics (Basel). 2017 Jul 26;7(3):45. doi: 10.3390/diagnostics7030045.

DOI:10.3390/diagnostics7030045
PMID:28933752
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5617945/
Abstract

Since the discovery of the two-dimensional (2D) carbon material, graphene, just over a decade ago, the development of graphene-based field effect transistors (G-FETs) has become a widely researched area, particularly for use in point-of-care biomedical applications. G-FETs are particularly attractive as next generation bioelectronics due to their mass-scalability and low cost of the technology's manufacture. Furthermore, G-FETs offer the potential to complete label-free, rapid, and highly sensitive analysis coupled with a high sample throughput. These properties, coupled with the potential for integration into portable instrumentation, contribute to G-FETs' suitability for point-of-care diagnostics. This review focuses on elucidating the recent developments in the field of G-FET sensors that act on a bioaffinity basis, whereby a binding event between a bioreceptor and the target analyte is transduced into an electrical signal at the G-FET surface. Recognizing and quantifying these target analytes accurately and reliably is essential in diagnosing many diseases, therefore it is vital to design the G-FET with care. Taking into account some limitations of the sensor platform, such as Debye-Hükel screening and device surface area, is fundamental in developing improved bioelectronics for applications in the clinical setting. This review highlights some efforts undertaken in facing these limitations in order to bring G-FET development for biomedical applications forward.

摘要

自从二维碳材料石墨烯在十多年前被发现以来,基于石墨烯的场效应晶体管(G-FET)的开发已成为一个广泛研究的领域,特别是在即时医疗生物医学应用方面。由于其大规模可扩展性和该技术制造的低成本,G-FET作为下一代生物电子器件特别具有吸引力。此外,G-FET具有完成无标记、快速且高度灵敏分析以及高样品通量的潜力。这些特性,再加上集成到便携式仪器中的潜力,使得G-FET适用于即时医疗诊断。本综述着重阐明基于生物亲和力的G-FET传感器领域的最新进展,即生物受体与目标分析物之间的结合事件在G-FET表面被转换为电信号。准确可靠地识别和量化这些目标分析物对于许多疾病的诊断至关重要,因此精心设计G-FET至关重要。考虑到传感器平台的一些局限性,如德拜 - 休克尔屏蔽和器件表面积,对于开发用于临床环境的改进型生物电子器件至关重要。本综述强调了为克服这些局限性所做的一些努力,以便推动用于生物医学应用的G-FET的发展。

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