Light-Regulated Electrochemical Sensor Array for Efficiently Discriminating Hazardous Gases

电化学气体传感器 检出限 电化学 信号(编程语言) 干扰(通信) 响应时间 材料科学 极限(数学) 光电子学 传感器阵列 生物系统 化学 计算机科学 电极 电信 数学分析 程序设计语言 数学 物理化学 频道(广播) 计算机图形学(图像) 机器学习 生物 色谱法
作者
Hongqiu Liang,Xin Zhang,Huihui Sun,Han Jin,Xiaowei Zhang,Qinghui Jin,Jie Zou,Hossam Haick,Jiawen Jian
出处
期刊:ACS Sensors [American Chemical Society]
卷期号:2 (10): 1467-1473 被引量:33
标识
DOI:10.1021/acssensors.7b00423
摘要

Inadequate detection limit and unsatisfactory discrimination features remain the challenging issues for the widely applied electrochemical gas sensors. Quite recently, we confirmed that light-regulated electrochemical reaction significantly enhanced the electrocatalytic activity, and thereby can potentially extend the detection limit to the parts per billion (ppb) level. Nevertheless, impact of the light-regulated electrochemical reaction on response selectivity has been discussed less. Herein, we systematically report on the effect of illumination on discrimination features via design and fabrication of a light-regulated electrochemical sensor array. Upon illumination (light on), response signal to the examined gases (C3H6, NO, and CO) is selectively enhanced, resulting in the sensor array demonstrating disparate response patterns when compared with that of the sensor array operated at light off. Through processing all the response patterns derived from both light on and light off with a pattern recognition algorithm, a satisfactory discrimination feature is observed. In contrast, apparent mutual interference between NO and CO is found when the sensor array is solely operated without illumination. The impact mechanism of the illumination is studied and it is deduced that the effect of the illumination on the discriminating features can be mainly attributed to the competition of electrocatalytic activity and gas-phase reactivity. If the enhanced electrocatalytic activity (to specific gas) dominates the whole sensing progress, enhancements in the corresponding response signal would be observed upon illumination. Otherwise, illumination gives a negligible impact. Hence, the response signal to part of the examined gases is selectively enhanced by illumination. Conclusively, light-regulated electrochemical reaction would provide an efficient approach to designing future smart sensing devices.
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