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基于石墨烯的生物传感器:推动下一代诊断技术——综述

Graphene-Based Biosensors: Enabling the Next Generation of Diagnostic Technologies-A Review.

作者信息

Ramoso John Paolo, Rasekh Manoochehr, Balachandran Wamadeva

机构信息

College of Engineering, Design and Physical Sciences, Brunel University of London, Uxbridge UB8 3PH, UK.

出版信息

Biosensors (Basel). 2025 Sep 6;15(9):586. doi: 10.3390/bios15090586.

Abstract

Graphene, a two-dimensional carbon material with a hexagonal lattice structure, possesses remarkable properties. Exceptional electrical conductivity, mechanical strength, and high surface area that make it a powerful platform for biosensing applications. Its sp-hybridised network facilitates efficient electron mobility and enables diverse surface functionalisation through bio-interfacing. This review highlights the core detection mechanisms in graphene-based biosensors. Optical sensing techniques, such as surface plasmon resonance (SPR) and surface-enhanced Raman scattering (SERS), benefit significantly from graphene's strong light-matter interaction, which enhances signal sensitivity. Although graphene itself lacks intrinsic piezoelectricity, its integration with piezoelectric substrates can augment the performance of piezoelectric biosensors. In electrochemical sensing, graphene-based electrodes support rapid electron transfer, enabling fast response times across a range of techniques, including impedance spectroscopy, amperometry, and voltammetry. Graphene field-effect transistors (GFETs), which leverage graphene's high carrier mobility, offer real-time, label-free, and highly sensitive detection of biomolecules. In addition, the review also explores multiplexed detection strategies vital for point-of-care diagnostics. Graphene's nanoscale dimensions and tunable surface chemistry facilitate both array-based configurations and the simultaneous detection of multiple biomarkers. This adaptability makes graphene an ideal material for compact, scalable, and accurate biosensor platforms. Continued advancements in graphene biofunctionalisation, sensing modalities, and integrated multiplexing are driving the development of next-generation biosensors with superior sensitivity, selectivity, and diagnostic reliability.

摘要

石墨烯是一种具有六边形晶格结构的二维碳材料,具有卓越的性能。其出色的导电性、机械强度和高表面积使其成为生物传感应用的强大平台。其sp杂化网络促进了高效的电子迁移,并通过生物界面实现了多种表面功能化。本文综述了基于石墨烯的生物传感器的核心检测机制。光学传感技术,如表面等离子体共振(SPR)和表面增强拉曼散射(SERS),因石墨烯强烈的光与物质相互作用而受益匪浅,这种相互作用增强了信号灵敏度。尽管石墨烯本身缺乏固有压电性,但其与压电基底的结合可以提高压电化学传感器的性能。在电化学传感中,基于石墨烯的电极支持快速电子转移,在包括阻抗谱、安培法和伏安法在内的一系列技术中实现快速响应时间。利用石墨烯高载流子迁移率的石墨烯场效应晶体管(GFET)能够对生物分子进行实时、无标记且高灵敏度的检测。此外,本文还探讨了对即时诊断至关重要的多重检测策略。石墨烯的纳米级尺寸和可调节的表面化学性质有利于基于阵列的配置以及多种生物标志物的同时检测。这种适应性使石墨烯成为紧凑、可扩展且准确的生物传感器平台的理想材料。石墨烯生物功能化、传感模式和集成多重检测方面的持续进步正在推动下一代具有卓越灵敏度、选择性和诊断可靠性的生物传感器的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9575/12467994/adbe5ba3dd9c/biosensors-15-00586-g003.jpg

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