Nature of the First Electron Transfer in Electrochemical Ammonia Activation in a Nonaqueous Medium
Abstract
Decreasing costs of renewable sources of electricity will increase the viability of electrochemical processes in chemical manufacturing. To this end, improved understanding of electrochemical N–H bond activation is essential to develop electrochemical routes for producing nitrogen-containing chemicals. In this work, we investigate electrochemical ammonia activation in acetonitrile, a prototypical nonaqueous solvent for electro-organic syntheses. Nonaqueous environments are desirable for electro-organic syntheses due to large electrochemical stability windows and high solubility for organic products. We find that ammonia oxidation in acetonitrile proceeds through an outer-sphere mechanism involving an initial electron transfer as the rate-determining step, likely producing an ammonia radical cation. Density functional theory calculations explain a low transfer coefficient and suggest possible subsequent reaction steps. Structural factors involved in lowering of the transfer coefficient provide insights that are applicable to a wider range of small-molecule activation chemistries.
Additional Information
© 2019 American Chemical Society. Received 22 January 2019. Revised 18 March 2019. Published online 21 March 2019. Published in issue 18 April 2019. Z.J.S., N.C., and N.L. gratefully acknowledge the National Science Foundation Graduate Research Fellowships Program. We also acknowledge the support of the MIT Energy Initiative Seed Fund. This work used the Extreme Science and Engineering Discovery Environment (XSEDE), which is supported by National Science Foundation grant number ACI-1548562. In particular, this work used the Extreme Science and Engineering Discovery Environment (XSEDE) Comet SDSC (TG-CHE180048). We are also grateful for advice and proofreading from Kindle Williams and Deng-Tao Yang. Author Contributions: All authors contributed to the preparation of this manuscript and approved the final version of the manuscript. The authors declare no competing financial interest.Attached Files
Supplemental Material - jp9b00669_si_001.pdf
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Additional details
Identifiers
- Eprint ID
- 114621
- DOI
- 10.1021/acs.jpcc.9b00669
- Resolver ID
- CaltechAUTHORS:20220505-565313000
Funding
- NSF Graduate Research Fellowship
- Massachusetts Institute of Technology (MIT)
- NSF
- ACI-1548562
- NSF
- TG-CHE180048
Dates
- Created
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2022-05-06Created from EPrint's datestamp field
- Updated
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2022-05-06Created from EPrint's last_modified field