Pulse electrochemical synaptic transistor for supersensitive and ultrafast biosensors

超短脉冲 跨导 晶体管 材料科学 灵敏度(控制系统) 生物传感器 光电子学 计算机科学 电子工程 纳米技术 电气工程 电压 光学 物理 工程类 激光器
作者
Jianlong Ji,Zhenxing Wang,Fan Zhang,Bin Wang,Yan Niu,Xiaoning Jiang,Zeng‐Ying Qiao,Tian‐Ling Ren,Wendong Zhang,Shengbo Sang,Zhengdong Cheng,Qijun Sun
出处
期刊:InfoMat [Wiley]
卷期号:5 (11) 被引量:41
标识
DOI:10.1002/inf2.12478
摘要

Abstract High sensitivity and fast response are the figures of merit for benchmarking commercial sensors. Due to the advantages of intrinsic signal amplification, bionic ability, and mechanical flexibility, electrochemical transistors (ECTs) have recently gained increasing popularity in constructing various sensors. In the current work, we have proposed a pulse‐driven synaptic ECT for supersensitive and ultrafast biosensors. By pulsing the presynaptic input (drain bias, V D ) and setting the modulation potential (gate bias) near transconductance intersection ( V G,i ), the synaptic ECT‐based pH sensor can achieve a record high sensitivity up to 124 mV pH −1 (almost twice the Nernstian limit, 59.2 mV pH −1 ) and an ultrafast response time as low as 8.75 ms (7169 times faster than the potentiostatic sensors, 62.73 s). The proposed synaptic sensing strategy can effectively eliminate the transconductance fluctuation issue during the calibration process of the pH sensor and significantly reduce power consumption. Besides, the most sensitive working point at V G,i has been elaborately figured out through a series of detailed mathematical derivations, which is of great significance to provide higher sensitivity with quasi‐nonfluctuating amplification capability. The proposed electrochemical synaptic transistor paired with an optimized operating gate offers a new paradigm for standardizing and commercializing high‐performance biosensors. image

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