紫外线
分子
紫外线
光电子学
炸薯条
材料科学
电子
化学
光化学
纳米技术
计算机科学
电信
物理
有机化学
量子力学
作者
Xicheng Wang,Yanyu Jiang,Xingwang Long,Zhengqiang Yan,Daotong You,Tuan Guo
标识
DOI:10.1016/j.cej.2025.165017
摘要
Carbon dioxide (CO 2 ) emissions pose significant threats to human health and the environment. Developing highly sensitive CO 2 sensors operating at room temperature is critical for environmental and industrial applications. This study introduces a room-temperature CO 2 sensing platform based on polyethyleneimine/polyethylene glycol-functionalized zinc oxide nanowires (PEI/PEG-ZnONWs) composites. Under ambient conditions (25 °C, 45% relative humidity), the sensor demonstrates a high response of 67% to 5000 ppm CO 2 , with rapid response and recovery times of 13 s and 61 s, respectively. Notably, ultraviolet (UV) (365 nm) activation enhances photogenerated carrier separation, significantly accelerating gas-sensitive kinetics and reducing response/recovery times to 5 s and 19 s, respectively. The sensor demonstrates excellent selectivity , stability, and reproducibility. Mechanistic studies attribute this enhancement to the amine-rich active sites introduced by PEI/PEG functionalization and the high surface area of ZnONWs, which facilitate gas adsorption/desorption dynamics and optimize charge transport through conductive pathways. Finally, the platform enables real-time monitoring of dynamic CO 2 changes in plants, distinguishing respiration from photosynthesis. These findings highlight the potential of PEI/PEG-ZnONWs sensors for CO 2 detection in industrial safety, environmental surveillance, and healthcare. • Highly selective CO 2 sensing achieved at 25 °C, enabling low-energy operation. • UV activation enables rapid response (5 s) and recovery (19 s) times. • Excellent stability and reproducibility demonstrated over 10 consecutive cycles.
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