材料科学
介电谱
异质结
氨
工作温度
纳米颗粒
氮氧化物
陶瓷
化学工程
相对湿度
选择性
纳米技术
光电子学
电极
化学
复合材料
电化学
电气工程
催化作用
物理化学
工程类
物理
有机化学
燃烧
热力学
生物化学
作者
Zhi Liu,Tingting He,Haoyu Sun,Baoyu Huang,Xiaogan Li
标识
DOI:10.1016/j.snb.2022.131918
摘要
The MXene/In2O3 heterostructure was formed through a facile hybridization process which enables the In2O3 nanoparticles to be coated dispersively on the surface and also partly intercalated into the interlayers of the layered MXene. The MXene/In2O3 hybrids based chemiresistive-type gas sensor exhibited good sensitivity and selectivity toward NH3 at room temperature. The response of the MXene/In2O3 hybrids based sensors to 20 ppm ammonia increased remarkably from 3.6% to 100.7% at room temperature in comparison to the pristine MXene-based one. Moreover, it was found that the gas response of the MXene/In2O3 based sensors to ammonia increased with the increase of relative humidity in the gas mixture. Furthermore, the wireless-type response of the MXene/In2O3 based sensors coupled with a LC antenna fabricated by a LTCC (low temperature co-fired ceramic) technology has also been examined. The wireless-type sensors displayed an excellent sensing performance with a significantly improved response/recovery time less than 2 s and a long-term stability toward ammonia. The in-situ infrared spectroscopy of MXene/In2O3 exposed to NH3 indicated the production of gaseous nitric oxides during the sensing process. The a.c. impedance spectroscopy shows that the bulk resistance of MXene/In2O3 heterostructured particles was mainly responsible for the generation of the sensor signals.
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