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Ambient methane functionalization initiated by electrochemical oxidation of a vanadium (V)-oxo dimer

Jiao Deng, Sheng‐Chih Lin, Jack T. Fuller, Jesus A. Iñiguez, Danlei Xiang, Di Yang, Gary Chan, Hao Ming Chen, Anastassia N. Alexandrova, Chong Liu

2020Nature Communications63 citationsDOIOpen Access PDF

Abstract

Abstract The abundant yet widely distributed methane resources require efficient conversion of methane into liquid chemicals, whereas an ambient selective process with minimal infrastructure support remains to be demonstrated. Here we report selective electrochemical oxidation of CH 4 to methyl bisulfate (CH 3 OSO 3 H) at ambient pressure and room temperature with a molecular catalyst of vanadium (V)-oxo dimer. This water-tolerant, earth-abundant catalyst possesses a low activation energy (10.8 kcal mol ‒1 ) and a high turnover frequency (483 and 1336 hr −1 at 1-bar and 3-bar pure CH 4 , respectively). The catalytic system electrochemically converts natural gas mixture into liquid products under ambient conditions over 240 h with a Faradaic efficiency of 90% and turnover numbers exceeding 100,000. This tentatively proposed mechanism is applicable to other d 0 early transition metal species and represents a new scalable approach that helps mitigate the flaring or direct emission of natural gas at remote locations.

Topics & Concepts

MethaneVanadiumSubstitute natural gasCatalysisAmbient pressureDimerElectrochemistryAnaerobic oxidation of methaneArtificial photosynthesisMaterials scienceBar (unit)Turnover numberNatural gasFaraday efficiencyTransition metalInorganic chemistryChemical engineeringPhotochemistryChemistryElectrodeSyngasOrganic chemistryPhysical chemistryPhotocatalysisThermodynamicsPhysicsEngineeringMeteorologyVanadium and Halogenation ChemistryAdvanced battery technologies researchCatalysis and Oxidation Reactions
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