Literature DB >> 30724073

Realizing the Control of Electronic Energy Level Structure and Gas-Sensing Selectivity over Heteroatom-Doped In2O3 Spheres with an Inverse Opal Microstructure.

Tianshuang Wang1, Bin Jiang1, Qi Yu1, Xueying Kou1, Peng Sun1, Fangmeng Liu1, Huiying Lu1, Xu Yan1, Geyu Lu1.   

Abstract

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 In2O3 inverse opal (IO-(Ga xIn1- x)2O3) 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 xIn1- x)2O3, 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 CH2O 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-(Ga0.2In0.8)2O3 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.

Entities:  

Keywords:  Fermi level; formaldehyde; gas sensor; inverse opal spheres; selectivity control

Year:  2019        PMID: 30724073     DOI: 10.1021/acsami.8b21543

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  2 in total

1.  Size-controlled synthesis of porous ZnSnO3 nanocubes for improving formaldehyde gas sensitivity.

Authors:  Jiaoling Zheng; Huanhuan Hou; Hao Fu; Liping Gao; Hongjie Liu
Journal:  RSC Adv       Date:  2021-06-07       Impact factor: 4.036

2.  Formaldehyde gas sensor with extremely high response employing cobalt-doped SnO2 ultrafine nanoparticles.

Authors:  Shiqiang Zhou; Huapeng Wang; Jicu Hu; Tianping Lv; Qian Rong; Yumin Zhang; Baoye Zi; Mingpeng Chen; Dongming Zhang; Jun Wei; Jin Zhang; Qingju Liu
Journal:  Nanoscale Adv       Date:  2022-01-03
  2 in total

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