4.7 Article

Tailoring the microstructure of BiVO4 sensing electrode by nanoparticle decoration and its effect on hazardous NH3 sensing

Journal

JOURNAL OF HAZARDOUS MATERIALS
Volume 455, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.jhazmat.2023.131588

Keywords

Bismuth vanadate(BiVO4); Yttria-stabilized zirconia (YSZ); Infiltration sensing electrode; Mixed-potential gas sensor; Electrochemical gas sensor

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Real-time monitoring and quantification of exhaust pollutants is crucial but difficult due to harsh conditions. In this study, BiVO4 nanoparticles are used to enhance the sensing performance in mixed-potential sensors. The results show that the nanoparticle decoration improves the microstructure and extends the triple phase boundary, resulting in higher sensitivity and faster response time. The fabricated sensor also exhibits good selectivity and stability.
Real-time monitoring and quantification of exhaust pollutants is crucial but is troublesome because of extremely harsh thermochemical conditions, and in this regard mixed-potential sensing technology can be a realistic solution. In this study, BiVO4 nanoparticles are decorated onto the preformed porous sensing electrode (SE) backbone by homogeneous infiltration process to improve the sensing performance in mixed-potential sensor. The influence of nanoparticle decoration on phase composition, microstructure and sensing performance are analyzed by physical and electrochemical techniques. Corresponding results indicate that the microstructure tailoring enhances the sensor performance, by extending the triple phase boundary (TPB) and surface area of SE itself. The sensitivity (-119.47 mV/decade) and response time (20 s) of i-BVO SE-based sensor at 600 degrees C are 20 % higher and 8 s faster than bare BiVO4 SE-based sensor (99.24 mV/decade and 28 s). Additionally, the i-BVO|YSZ|Pt cell exhibits good selectivity and cross-sensitivity toward NH3 without any dependency on oxygen partial pressure (pO(2)). The fabricated sensor is also found stable towards cyclic and long-term operations. Electrochemical Impendence Spectroscopy (EIS) and DC polarization studies were performed to confirm the mixed-potential behavior. Conclusively, the superior sensing performance of i-BVO SE compared to various oxide based SEs highlights its suitability for mixed-potential NH3 sensing.

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