臭氧
检出限
材料科学
氮氧化物
甲醛
分析物
选择性
灵敏度(控制系统)
氧化物
电子鼻
金属
二氧化氮
室内空气
降级(电信)
相对湿度
室内空气质量
共沉淀
空气污染
污染
环境科学
吸收(声学)
电子转移
环境化学
化学工程
光电子学
光化学
半导体
图层(电子)
每个符号的零件数
停留时间(流体动力学)
信号(编程语言)
空气监测
残余物
噪音(视频)
分析化学(期刊)
敏化
作者
Linghao Wu,Zhen Shen,Xiaoxue Sun,Haifei Xu,Xin Zhou,Guojun Ma,Ning Han,Yunfa Chen
标识
DOI:10.1021/acsami.6c01743
摘要
Metal oxide semiconductor (MOS) gas sensors are promising in indoor air pollution monitoring, which however are still struggling to balance sensitivity and selectivity. In this study, transition metal oxide (TMO) modified SnO2 sensing materials are synthesized through a simple coprecipitation method. The sensitivity and selectivity are both modulated by ozone toward the typical indoor air pollutants, such as p-xylene and formaldehyde as analytes and ethanol as an interferent. The TMO modification enriches surface active sites, resulting in a nearly 5-fold performance enhancement versus pristine SnO2. Ozone thickens the electron depletion layer (EDL) to amplify the change of conductivity signal and deeply oxidizes the residual intermediates on the surface, making the electron transfer more significant compared to that in air. All of these contribute to lowering the optimal operating temperature for p-xylene, doubling the response to 5 ppm from 7.18 (300 °C, air) to 16.73 (260 °C, ozone) with a limit of detection (LOD) of 35.98 ppb, while the performance in formaldehyde detection is the opposite. The differentiated amplification between various analytes and interferents improves the accuracy of the array for p-xylene with a relative mean absolute error (RMAE) of less than 5%. This optimization strategy offers new insights into material regulation and gas interaction.
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