Xue Chen, Tianyi Tian, Shu-Hang Wang, Hang Zhang, Jing-Wei Zhao, X H Li, Si-Si Zhao, Zhen Zhao
The photocatalytic conversion of methane and oxygen into C1 oxygenates with high activity and high selectivity under mild conditions has long been a sought-after goal in industrial production. This work proposes a polyoxometalate-mediated Pt-based catalyst prepared by treating MOF-derived TiO 2 via impregnation and calcination. The optimal dual co-catalyst (Pt/TiO 2 -HPW) achieved C1 oxygenates with a yield of 28.06 mmol·g cat −1 and selectivity of 98.96%, where HCOOH selectivity accounted for 57.66% after 1 h of reaction at 80 °C. Furthermore, the apparent quantum efficiency at 365 nm reached 1.46%. Combined experimental characterization and DFT calculations reveal that the high-density PtO x species on rutile TiO 2 (110) and anatase TiO 2 (101) facilitate the reduction of O 2 to ·OOH radicals, while the Lewis acid sites on TiO 2 promote the dissociation of H 2 O into ·OH radicals. Simultaneously, the introduction of phosphotungstic acid (HPW) further optimizes the electronic structure of the catalytic center via synergy with Pt. The observed strong charge interactions indicate enhanced adsorption and more efficient C−H bond activation, thereby achieving efficient methane and oxygen photocatalytic conversion.