Wang Jing, Fan Saiying, Xia Yi, Yang Cheng, Komarneni Sridhar
Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering, Jiangnan University, Wuxi 214122, China.
Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering, Jiangnan University, Wuxi 214122, China.
J Hazard Mater. 2020 Jan 5;381:120919. doi: 10.1016/j.jhazmat.2019.120919. Epub 2019 Jul 25.
Gas sensors play vital roles in air pollution monitoring. Despite considerable progress in improving the room-temperature gas sensing sensitivities and rates of materials, comparably less attention is paid to the sensor selectivity. Here, ultrathin ZnO nanorods (˜15 nm) were synthesized by a nanoseed-assisted wet chemical approach and subsequently functionalized by Au nanoparticles by a photoreduction method. The hybrid material exhibited visible-light-activity owing to the surface plasmon resonance (SPR) effects of Au nanoparticles. The ZnO/Au hybrids were assembled into a high-performance, optically-controlled gas sensor operating at room temperature, which was found to be more selective to NH in dark but showed high selectivity to NO under visible-light illumination (λ = 532 nm). Moreover, the sensors exhibited high response and short response and recovery times as well as excellent reversibility and selectivity at room temperature. Such visible-light-modulated dual gas selectivity could be mainly attributed to the opposite direction of electron transfer between ZnO and Au nanoparticles in dark and under visible-light illumination, which led to the different surface depletion characteristics of the ZnO nanorods. In addition, the ultrathin diameters of nanorods also synergistically contributed to the light-controlled dual gas selectivity. The presently developed light modulation strategy provides an alternative approach to highly-selective and dual-functional gas sensors operating at room temperature.
气体传感器在空气污染监测中发挥着至关重要的作用。尽管在提高材料的室温气敏灵敏度和响应速率方面取得了显著进展,但对传感器选择性的关注相对较少。在此,通过纳米种子辅助湿化学方法合成了超薄氧化锌纳米棒(约15纳米),随后通过光还原法用金纳米颗粒对其进行功能化。由于金纳米颗粒的表面等离子体共振(SPR)效应,该混合材料表现出可见光活性。将氧化锌/金混合材料组装成一种在室温下工作的高性能光控气体传感器,发现该传感器在黑暗中对氨气更具选择性,但在可见光照射(λ = 532纳米)下对一氧化氮具有高选择性。此外,该传感器在室温下表现出高响应性、短响应和恢复时间以及出色的可逆性和选择性。这种可见光调制的双气体选择性主要归因于黑暗和可见光照射下氧化锌和金纳米颗粒之间电子转移方向相反,这导致了氧化锌纳米棒不同的表面耗尽特性。此外,纳米棒的超薄直径也协同促进了光控双气体选择性。目前开发的光调制策略为室温下工作的高选择性和双功能气体传感器提供了一种替代方法。