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◆ Chemical Engineering Journal2026-03-24· Materials science

Design and optimization of Co3O4 nanostructures for hydrogen sulfide sensing

Youssef Doubi, Bouchaib Hartiti, Maryam Siadat, Hicham Labrim, Mounia Tahri, Abdellah Laazizi, Philippe Thevenin, Mustapha Jouiad

原始摘要(英文原文)· Original abstract
Metal oxide semiconductors including cobalt oxide (Co 3 O 4 ) have emerged as a pivotal class of materials for high-performance gas-sensing applications due to their intrinsic chemical stability, tunable surface reactivity, and robustness under severe operating environments. Herein Co 3 O 4 thin films were fabricated via a scalable and cost-effective spray-coating process to evaluate their potential as active layers for hydrogen sulfide (H 2 S) detection. The resulting films exhibit a well-defined porous morphology and strong optical absorption, features that collectively enhance surface-gas interactions and charge transport dynamics. The optimized Co 3 O 4 sensors display an impressive and reproducible relative response of 17.59 toward H 2 S, along with rapid response and recovery times of 20 s and 120 s, respectively. Such performance metrics surpass many conventionally processed counterparts, underscoring the efficacy of the spray-coating approach in tailoring surface activity and microstructure. These findings position spray-deposited Co 3 O 4 thin films as promising candidates for next-generation, low-cost, and highly responsive H 2 S gas-sensing devices applicable in industrial safety and environmental monitoring.
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