Microfluidics integrated n-type organic electrochemical transistor for metabolite sensing

微流控 葡萄糖氧化酶 纳米技术 生物传感器 晶体管 跨导 分析物 材料科学 光电子学 生物电子学 代谢物 化学 电气工程 生物化学 工程类 电压 色谱法
作者
Anil Koklu,David Ohayon,Shofarul Wustoni,Adel Hama,Xingxing Chen,Iain McCulloch,Sahika Inal
出处
期刊:Sensors and Actuators B-chemical [Elsevier]
卷期号:329: 129251-129251 被引量:43
标识
DOI:10.1016/j.snb.2020.129251
摘要

The organic electrochemical transistor (OECT) can translate biochemical binding events between a recognition unit and its analyte into an electrical signal. We present an OECT comprising an n-type (electron transporting) conjugated polymer-based channel and lateral gate electrode functionalized with the enzyme, glucose oxidase. The device is integrated with a microfluidic system for real-time glucose monitoring in a flow-through manner. The n-type polymer has direct electrical communication with glucose oxidase, allowing glucose detection while surpassing hydrogen peroxide production. The microfluidic-integrated OECT shows superior features compared to its microfluidic-free counterpart, including higher current and transconductance values as well as improved signal-to-noise (SNR) ratios, which enhances the sensor sensitivity and its detection limit. Thanks to the low noise endowed by the integrated microfluidics, the gate current changes upon metabolite recognition could be resolved, revealing that while the relative changes in gate and drain currents are similar, the drain current output has a higher SNR. This is the first demonstration of the integration of a microfluidic system with an n-type accumulation mode OECT for real-time enzymatic metabolite detection. The microfluidic-integrated design provides new insights into the mechanisms leading to high sensor sensitivities, crucial for the development of portable and autonomous lab-on-a-chip technologies.
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