Electrified hydrocarbon-to-oxygenates coupled to hydrogen evolution for efficient greenhouse gas mitigation

Author:

Leow Wan RuORCID,Völker SimonORCID,Meys Raoul,Huang Jianan Erick,Jaffer Shaffiq A.ORCID,Bardow AndréORCID,Sargent Edward H.ORCID

Abstract

AbstractChemicals manufacture is among the top greenhouse gas contributors. More than half of the associated emissions are attributable to the sum of ammonia plus oxygenates such as methanol, ethylene glycol and terephthalic acid. Here we explore the impact of electrolyzer systems that couple electrically-powered anodic hydrocarbon-to-oxygenate conversion with cathodic H2 evolution reaction from water. We find that, once anodic hydrocarbon-to-oxygenate conversion is developed with high selectivities, greenhouse gas emissions associated with fossil-based NH3 and oxygenates manufacture can be reduced by up to 88%. We report that low-carbon electricity is not mandatory to enable a net reduction in greenhouse gas emissions: global chemical industry emissions can be reduced by up to 39% even with electricity having the carbon footprint per MWh available in the United States or China today. We conclude with considerations and recommendations for researchers who wish to embark on this research direction.

Funder

Deutsche Forschungsgemeinschaft

Federal Department of the Environment, Transport, Energy, and Communications | Bundesamt für Energie

Canadian Institute for Advanced Research

Gouvernement du Canada | Natural Sciences and Engineering Research Council of Canada

Connaught Fund

Ontario Ministry of Colleges and Universities

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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