State Key Laboratory on Integrated Optoelectronics, Key Laboratory of Gas Sensors, Jilin Province, College of Electronic Science and Engineering , Jilin University , 2699 Qianjin Street , Changchun 130012 , People's Republic of China.
ACS Appl Mater Interfaces. 2019 Mar 6;11(9):9600-9611. doi: 10.1021/acsami.8b21543. Epub 2019 Feb 19.
Understanding the effect of substitutional doping on gas-sensing performances is essential for designing high-activity sensing nanomaterials. Herein, formaldehyde sensors based on gallium-doped InO inverse opal (IO-(Ga In)O) microspheres were purposefully prepared by a simple ultrasonic spray pyrolysis method combined with self-assembled sulfonated polystyrene sphere templates. The well-aligned inverse opal structure, with three different-sized pores, plays the dual role of accelerating the diffusion of gas molecules and providing more active sites. The Ga substitutional doping can alter the electronic energy level structure of (Ga In)O, leading to the elevation of the Fermi level and the modulation of the band gap close to a suitable value (3.90 eV), hence, effectively optimizing the oxidative catalytic activity for preferential CHO oxidation and increasing the amount of adsorbed oxygen. More importantly, the gas selectivity could be controlled by varying the energy level of adsorbed oxygen. Accordingly, the IO-(GaIn)O microsphere sensor showed a high response toward formaldehyde with fast response and recovery speeds, and ultralow detection limit (50 ppb). Our findings finally offer implications for designing Fermi level-tailorable semiconductor nanomaterials for the control of selectivity and monitoring indoor air pollutants.
理解取代掺杂对气敏性能的影响对于设计高活性传感纳米材料至关重要。在此,通过简单的超声喷雾热解法结合自组装磺化聚苯乙烯球模板,有目的地制备了基于掺镓的铟氧化物(IO-(GaIn)O)中空微球的甲醛传感器。具有三种不同尺寸孔的良好排列的反蛋白石结构具有加速气体分子扩散和提供更多活性位点的双重作用。Ga 取代掺杂可以改变(GaIn)O 的电子能级结构,导致费米能级升高,带隙调制到合适的值(3.90 eV)附近,从而有效优化了对 CHO 优先氧化的氧化催化活性,并增加了吸附氧的量。更重要的是,通过改变吸附氧的能级可以控制气体选择性。因此,IO-(GaIn)O 微球传感器对甲醛表现出高响应,具有快速的响应和恢复速度,超低的检测限(50 ppb)。我们的研究结果最终为设计可调节费米能级的半导体纳米材料以控制选择性和监测室内空气污染物提供了启示。