Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen, 518055, China.
Southern University of Science and Technology, Shenzhen, 518055, China.
Adv Sci (Weinh). 2024 Oct;11(39):e2401796. doi: 10.1002/advs.202401796. Epub 2024 Jul 23.
Graphene field-effect transistors (GFETs) are widely used in biosensing due to their excellent properties in biomolecular signal amplification, exhibiting great potential for high-sensitivity and point-of-care testing in clinical diagnosis. However, difficulties in complicated fabrication steps are the main limitations for the further studies and applications of GFETs. In this study, a modular fabrication technique is introduced to construct microfluidic GFET biosensors within 3 independent steps. The low-melting metal electrodes and intricate flow channels are incorporated to maintain the structural integrity of graphene and facilitate subsequent sensing operations. The as-fabricated GFET biosensor demonstrates excellent long-term stability, and performs effectively in various ion environments. It also exhibits high sensitivity and selectivity for detecting single-stranded nucleic acids at a 10 fm concentration. Furthermore, when combined with the CRISPR/Cas12a system, it facilitates amplification-free and rapid detection of nucleic acids at a concentration of 1 fm. Thus, it is believed that this modular-fabricated microfluidic GFET may shed light on further development of FET-based biosensors in various applications.
石墨烯场效应晶体管(GFETs)由于在生物分子信号放大方面具有优异的性能,在临床诊断中的高灵敏度和即时检测方面显示出巨大的潜力,因此被广泛应用于生物传感领域。然而,复杂的制造步骤带来的困难是 GFET 进一步研究和应用的主要限制。在这项研究中,引入了一种模块化制造技术,可在 3 个独立步骤内构建微流控 GFET 生物传感器。采用低熔点金属电极和复杂的流道,以保持石墨烯的结构完整性,并便于后续的传感操作。所制造的 GFET 生物传感器表现出优异的长期稳定性,并能在各种离子环境中有效工作。它还能以 10 fM 的浓度检测单链核酸,具有高灵敏度和选择性。此外,当与 CRISPR/Cas12a 系统结合使用时,它能够在 1 fM 的浓度下实现无扩增的快速核酸检测。因此,相信这种模块化制造的微流控 GFET 可能为基于 FET 的生物传感器在各种应用中的进一步发展提供启示。