Thermodynamic Discrimination between Energy Sources for Chemical Reactions
Abstract
Chemical transformations traverse large energy differences, yet the comparison of energy sources to drive a reaction is often done on a case-by-case basis; there is no fundamentally driven, universal framework with which to analyze and compare driving forces for chemical reactions. In this work, we present a reaction-independent expression for the equilibrium constant as a function of temperature, pressure, and voltage. With a specific set of axes, all reactions are represented by a single (x, y) point, and a quantitative divide between electrochemically and thermochemically driven reactions is visually evident. Additionally, we show that our expression has a strong physical basis in work and energy fluxes to the system, although specific data about operating conditions are necessary to provide a quantitative energy analysis. Overall, this universal equation and facile visualization of chemical reactions provides a consistent thermodynamic framework for comparing electrochemical versus thermochemical energy sources without knowledge of detailed process parameters.
Additional Information
© 2020 Elsevier. Under an Elsevier user license. Received 13 September 2020, Revised 11 November 2020, Accepted 16 December 2020, Available online 11 January 2021, Version of Record 20 January 2021. This material is based on work supported by the National Science Foundation under grant no. 1944007. The authors thank Nathan Corbin, Nikifar Lazouski, and Kindle Williams for useful discussions. Z.J.S. and A.M.L. also acknowledge a graduate research fellowship from the National Science Foundation under grant no. 1745302. Author Contributions. Conceptualization, Z.J.S. and K.M.; Methodology, Z.J.S., A.M.L., and K.M.; Software, Z.J.S.; Validation, Z.J.S., A.M.L., and K.M.; Investigation, Z.J.S., A.M.L., and K.M.; Resources, Z.J.S., A.M.L., and K.M.; Writing – Original Draft, Z.J.S.; Writing – Review & Editing, Z.J.S., A.M.L., and K.M.; Visualization, Z.J.S.; Supervision, K.M.; Funding Acquisition, K.M. The authors declare no competing interests.Attached Files
Supplemental Material - 1-s2.0-S2542435120306139-mmc1.pdf
Files
1-s2.0-S2542435120306139-mmc1.pdf
Additional details
Identifiers
- Eprint ID
- 114611
- DOI
- 10.1016/j.joule.2020.12.014
- Resolver ID
- CaltechAUTHORS:20220505-565175000
Funding
- NSF
- CBET-1944007
- NSF Graduate Research Fellowship
- DGE-1745302
Dates
- Created
-
2022-05-12Created from EPrint's datestamp field
- Updated
-
2022-05-12Created from EPrint's last_modified field