材料科学
晶体管
制作
生物电子学
纳米技术
可重用性
光电子学
电极
生物传感器
可穿戴计算机
灵敏度(控制系统)
石墨烯
小型化
电解质
多路复用
可穿戴技术
可扩展性
等离子体
电子线路
纳米传感器
分析物
导电体
逻辑门
电子工程
集成电路
作者
Qi Shu,Hongru Ma,Lvkun Yang,Xiaoqing Qi,Kaicong Liu,Liuna Luo,Wenjia Xie,Siqi Li,Kangxin Hou,Zijian Shi,F J Song,Donglin Ma,Gangshi Wang,T. Gao
标识
DOI:10.1021/acsami.5c19557
摘要
Rapid and reliable point-of-care plasma electrolyte analysis is critical for patient management under extensive care, driving demand for miniaturized sensors capable of ultralow sample consumption and multiplexed detection. We present a wafer-scale fabricated ion-selective graphene field-effect transistor (ISGFET) array that overcomes limitations of conventional ion-selective electrodes through a 2 μm × 5 μm sensing area and monolithic integration of K+/Na+/Ca2+ selective membranes. The ISGFET sensor exhibited high sensitivity (52.43 mV/decade for K+, 53.62 mV/decade for Na+, and 28.72 mV/decade for Ca2+) and selectivity in ion detection, as well as notable stability under physiological conditions and long-term reusability for over a month. The ISGFET-based sensing platform for the first time demonstrated its 100% diagnostic accuracy for potassium measurement in human plasma with an error of 4.37% (0.17 mM), when consuming less (<30 μL) sample volume, compared to hospital-based instrumentation. This manufacturable biosensor architecture not only addresses current needs in emergency blood testing but also establishes a foundation for next-generation wearable or in vivo electrolyte monitors through scalable graphene bioelectronics fabrication.
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