Poly3‐Hexylthiophene Titanium Dioxide (P3HT‐TiO2) Composite Sensor for High Response Detection of Ammonia at Room Temperature

Author:

Fei Yuqian1,Nie Zizhuo1,Ding Shujiang1,Wang Jiuhong2,Yu Wei1,Li Na1,Liu Yuhang3,Peng Bo3,Feng Xiaoli4,Liu Limin1,Jiang Xinbing1ORCID

Affiliation:

1. Engineering Research Center of Energy Storage Materials and Devices School of Chemistry Xi'an Jiaotong University Xi An Shi, Xi'an 710049 China

2. School of Instrument Science and Technology Xi'an Jiaotong University Xi An Shi, Xi'an 710049 China

3. Beijing Machine and Equipment Institute 50 Yong Ding Road, Haidian District Beijing 100854 China

4. Yan'an Institute of Quality and Technology Testing No'3 Yanhe East Road, Baotashan Subdistrict, Baota District Yan'an 716000 China

Abstract

AbstractGas sensors for ammonia (NH3) play a crucial role in the maintenance of air quality, preservation of the atmosphere, and evaluation of human health. However, the endeavor to attain a high level of sensitivity in detecting NH3 under ambient conditions remains a challenging task. In this work, poly(3‐hexylthiophene)s and titanium dioxide (P3HT‐TiO2) heterostructure NH3 gas‐sensitive material was prepared, and by drop‐casting the material onto a substrate with Au interdigital electrodes, a sensor for high‐response detection of NH3 at room temperature was constructed. The designed gas sensor exhibited a high response signal of 114.61 % toward 15 ppm NH3 at room temperature (25 °C) with good reproducibility, strong long‐term stability, and excellent selectivity. Moreover, by analyzing the response law of the sensor under different humidity conditions, it has been noted that both excessively high and excessively low levels of humidity adversely affect the sensor's response. The remarkable increase in NH3 sensing properties is attributed to the synergistic enhancement effect of P−N heterojunction formed between P3HT and TiO2. This NH3 gas sensor exhibits tremendous potential for use due to its straightforward structure and outstanding ammonia sensing performance.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

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