Room-Temperature Conversion of Methane with Ozone over MOR Lattice-Confined Pd Sites.
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Catalytic Processes in Materials Science
Catalysis and Oxidation Reactions
Catalysts for Methane Reforming
The catalytic oxidation of methane to value-added C1 oxygenates under mild conditions represents an energy-efficient strategy for natural gas utilization, yet remains challenging due to the inherent c
APA
Xin Dai, Wei Hu, et al. (2026). Room-Temperature Conversion of Methane with Ozone over MOR Lattice-Confined Pd Sites.. Journal of the American Chemical Society, 148(13), 14205-14212. https://doi.org/10.1021/jacs.6c00561
MLA
Xin Dai, et al.. "Room-Temperature Conversion of Methane with Ozone over MOR Lattice-Confined Pd Sites.." Journal of the American Chemical Society, vol. 148, no. 13, 2026, pp. 14205-14212.
PMID
41906810 ↗
Abstract 한글 요약
The catalytic oxidation of methane to value-added C1 oxygenates under mild conditions represents an energy-efficient strategy for natural gas utilization, yet remains challenging due to the inherent chemical inertness of methane. Herein, we report a highly efficient catalyst featuring atomically dispersed Pd sites confined within the lattice of mordenite (MOR) for room-temperature methane oxidation using ozone as the oxidant. This catalyst achieves over 99% selectivity toward C1 oxygenates with a high yield of 6.0 mmol g h at 25 °C. Comprehensive in situ experiments, microscopic characterizations, and theoretical calculations reveal that the ozone with a strong oxidative potential can be facilely dissociated to reactive oxygen species (O*) on the MOR lattice-confined Pd sites, where methane can be efficiently activated and converted to desirable products. We found that dual-Pd sites possess a higher catalytic performance than the single-Pd sites, which is attributed to the optimized trade-off between the activities for ozone dissociation to O* and C-H cleavage, thereby enabling efficient CH conversion.
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