High-selectivity room-temperature partial oxidation of methane to methanol enabled by electrochemical oxygen promotion on IrO2 catalysts

  • Cheolho Kim
  • , Jaehyun Lee
  • , Sungwoo Lee
  • , Wonho Jung
  • , Heewon Min
  • , Jiyun Choi
  • , Sungwon Kim
  • , Yong Tae Kim
  • , Jinwon Lee
  • , Jong Suk Yoo
  • , Jun Hyuk Moon

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

The electrochemical conversion of methane into value-added chemicals offers a sustainable solution for utilizing abundant methane resources, yet achieving high selectivity for partial oxidation remains challenging. Here we demonstrate that employing an IrO2 catalyst with CO32− as an oxygen source enables efficient and selective electrochemical methane-to-methanol conversion at room temperature. Adsorption and dissociation of CO32− on IrO2(110) surfaces generates abundant active oxygen species, facilitating methane activation through surface-bound methoxy intermediates and thereby substantially enhancing methanol selectivity. Optimal conditions for methanol production are achieved within a potential range where interference from the competing oxygen evolution reaction is minimized, reaching a maximum methanol production rate of approximately 11.1 mmol gcat−1 h−1 at 1.50 versus the reversible hydrogen electrode under continuous operation. Process modelling indicates an approximately 50% reduction in carbon emissions compared to conventional methanol production methods, emphasizing the sustainability and practical potential of this electrochemical methane oxidation approach. (Figure presented.)

Original languageEnglish
Pages (from-to)688-696
Number of pages9
JournalNature Catalysis
Volume8
Issue number7
DOIs
StatePublished - Jul 2025

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