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Solar-energy-driven conversion of oxygen-bearing low-concentration coal mine methane into methanol on full-spectrum-responsive WO3−x catalysts

ENERGY CONVERSION AND MANAGEMENT [2021]
Juan Yang, Pengyu Chen, Jun Dai, Yumei Chen, Liqing Rong, Dazhao Wang
ABSTRACT

Sunlight-driven photocatalysis is regarded as a promising strategy for direct conversion of methane in low concentration coal mine methane (LC-CMM) to value-added methanol, yet remains a grand challenge to efficiently activate and convert methane. Herein, WO 3−x nanosheets with gradient concentration of oxygen vacancy were synthesized and firstly served as full-spectrum responsive catalysts for transformation of LC-CMM to methanol at ambient conditions. Defect-rich WO 3−x -N2.0 shows a methanol yield of 1475 μmol·g −1 , roughly 4.5 times higher than WO 3 -A2.0 under simulated solar light irradiation. The selectivity of CH 3 OH on the optimal WO 3−x -N2.0 is up to 76%. More importantly, WO 3−x -N2.0 exhibits a methanol yield of 396 μmol·g −1 with the selectivity of 82% even under near infrared light irradiation while almost no CH 3 OH is detected over WO 3 -A2.0. Based on the results of energy-band structure, photoelectrochemical characterization, PLs and EPR tests, the significantly enhanced photocatalytic performance over WO 3−x -N2.0 is ascribed to the synergistic effect caused by the formation of oxygen vacancies, including extending light absorption into NIR region, improving separation of photoinduced electron-hole pairs and boosting production of hydroxyl radicals (key active species that drive CH 3 OH production). This work will offer a sustainable pathway to broaden the utilization of LC-CMM via efficient coupling of solar energy.

MATERIALS

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