Published December 4, 2020 | Version Supplemental Material
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Mechanism of Chlorine-Mediated Electrochemical Ethylene Oxidation in Saline Water

  • 1. ROR icon Massachusetts Institute of Technology

Abstract

Chlorine as a redox mediator allows for the selective oxidation of ethylene to 2-chloroethanol, which converts to ethylene oxide in alkaline aqueous electrolyte. This strategy utilizes abundant saline water as an electrolyte and source of oxygen atoms for functionalization. We present a mechanistic study of ethylene oxidation in saline water using cobalt oxide nanoparticle catalysts. Electrochemical kinetic analysis and in situ X-ray absorption spectroscopy suggest that the resting state of the catalyst and the rate-determining step differ for the chlorine evolution reaction in the presence and absence of ethylene. In 0.6 M NaCl pH 8 electrolyte, which resembles seawater, the average current density was ∼60 mA/cm² with a Faradaic efficiency of ∼41% toward ethylene functionalization. The use of synthetic and natural seawater achieved Faradaic efficiencies above 70%, while the partial current toward the product remained invariant. Further conversion of the initial product 2-chloroethanol into ethylene glycol was also demonstrated. We present a broader vision of harnessing saline water in electrochemical functionalization of organic molecules and coproduction of hydrogen.

Additional Information

© 2020 American Chemical Society. Received 26 June 2020. Revised 26 October 2020. Published online 17 November 2020. Published in issue 4 December 2020. We are grateful for the advice and insightful feedback from Kindle Williams, Joseph Maalouf, Dengtao Yang, Nathan Corbin, Nikifar Lazouski, Zachary Schiffer, and Aditya Limaye. This research was supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, Catalysis Science Program, under Award Number DE-SC0020999. This research used resources of the Advanced Light Source, which is a Department of Energy Office of Science User Facility under contract no. DE-AC02-05CH11231. We thank Dr. Sirine Fakra for discussions and advice for in situ XAS techniques. M.C. gratefully acknowledges the support of a Kwanjeong Fellowship. The authors declare no competing financial interest.

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Identifiers

Eprint ID
114613
Resolver ID
CaltechAUTHORS:20220505-565203000

Funding

Department of Energy (DOE)
DE-SC0020999
Department of Energy (DOE)
DE-AC02-05CH11231
Kwanjeong Educational Foundation

Dates

Created
2022-05-09
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Updated
2022-05-09
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