Theory of coupled ion-electron transfer kinetics
Creators
- 1. Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139 (United States)
- 2. Departments of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139 (United States)
- 3. Department of Energy, Environmental and Chemical Engineering, Washington University, Saint Louis, MO, 63130 (United States)
- 4. Department of Materials Science and Engineering, Stanford University, Stanford, CA, 94305 (United States)
- 5. Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139 (United States)
- 6. Department of Mathematics, Massachusetts Institute of Technology, Cambridge, MA, 02139 (United States)
Description
The microscopic theory of chemical reactions is based on transition state theory, where atoms or ions transfer classically over an energy barrier, as electrons maintain their ground state. Electron transfer is fundamentally different and occurs by tunneling in response to solvent fluctuations. Here, we develop the theory of coupled ion-electron transfer, in which ions and solvent molecules fluctuate cooperatively to facilitate non-adiabatic electron transfer. We derive a general formula of the reaction rate that depends on the overpotential, solvent properties, the electronic structure of the electron donor/acceptor, and the excess chemical potential of ions in the transition state. For Faradaic reactions, the theory predicts curved Tafel plots with a concentration-dependent reaction-limited current. For moderate overpotentials, our formula reduces to the Butler–Volmer equation and explains its relevance, not only in the well-known limit of large electron-transfer (solvent reorganization) energy, but also in the opposite limit of large ion-transfer energy. The rate formula is applied to Li-ion batteries, where reduction of the electrode host material couples with ion insertion. In the case of lithium iron phosphate, the theory accurately predicts the concentration dependence of the exchange current measured by in operando X-Ray microscopy without any adjustable parameters. These results pave the way for interfacial engineering to enhance ion intercalation rates, not only for batteries, but also for ionic separations and neuromorphic computing.
Availability note (English)
Available from http://dx.doi.org/10.1016/j.electacta.2020.137432Additional details
Additional titles
- Augmented title (English)
- Coupled ion-electron transfer;Ion intercalation;Li-ion batteries;Memristors;Neuromorphic computing
Identifiers
- DOI
- 10.1016/j.electacta.2020.137432;
- PII
- S0013468620318259;
Publishing Information
- Journal Title
- Electrochimica Acta
- Journal Volume
- 367
- Journal Page Range
- vp.
- ISSN
- 0013-4686
- CODEN
- ELCAAV
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 54121229
- Subject category
- S37: INORGANIC, ORGANIC, PHYSICAL AND ANALYTICAL CHEMISTRY; S25: ENERGY STORAGE;
- Descriptors DEI
- ATOMIC IONS; BINDING ENERGY; ELECTRON TRANSFER; ELECTRONIC STRUCTURE; ENERGY TRANSFER; GROUND STATES; IRON PHOSPHATES; LITHIUM ION BATTERIES; REACTION KINETICS; SOLVENT PROPERTIES; X RADIATION
- Descriptors DEC
- CHARGED PARTICLES; ELECTRIC BATTERIES; ELECTROCHEMICAL CELLS; ELECTROMAGNETIC RADIATION; ENERGY; ENERGY LEVELS; ENERGY STORAGE SYSTEMS; ENERGY SYSTEMS; IONIZING RADIATIONS; IONS; IRON COMPOUNDS; KINETICS; OXYGEN COMPOUNDS; PHOSPHATES; PHOSPHORUS COMPOUNDS; RADIATIONS; TRANSITION ELEMENT COMPOUNDS
Optional Information
- Copyright
- Copyright (c) 2020 Elsevier Ltd. All rights reserved.