Suppressing void formation in all-solid-state batteries: The role of interfacial adhesion on alkali metal vacancy transport

16Citations
Citations of this article
54Readers
Mendeley users who have this article in their library.

Abstract

All-solid-state batteries containing a solid electrolyte and a lithium (Li) or sodium (Na) metal anode are a promising solution to simultaneously increase the energy density and safety of rechargeable batteries. However, problems remain with the stripping of alkali metal from the alkali metal/solid-state electrolyte interface during discharge in which void formation and loss of contact can occur. A novel bond breaking model is developed in this work to understand the relationship between alkali metal vacancy segregation and interfacial adhesion at the alkali metal/solid-state electrolyte interface. The bond breaking approach is tested against density functional theory (DFT) calculations of pristine Li and Na metal surfaces and interfaces between Li and Na metal and model substrate structures (LiCl, Li3OCl, LiMg, Li2O, γ-Li3PO4, AlSc, NaCl and NaBr). The activation barrier for surface to subsurface vacancy diffusion was found to be considerably larger than bulk diffusion in Li and Na slabs. At the alkali metal/solid-state electrolyte interface, the preference for alkali metal vacancy segregation is shown to be intimately linked to the interfacial work of adhesion (Wad) and alkali metal surface energy,σm. Suppression of alkali vacancy segregation to the interface is found to occur whenWad≥ 2σm. The role of interfacial structure on the vacancy segregation energy is demonstrated for both coherent and incoherent Li/LiCl interfaces. This work provides novel guidelines for the materials engineering of new solid-state electrolyte and interlayer materials that can suppress void formation in all-solid-state batteries with alkali metal anodes.

References Powered by Scopus

Generalized gradient approximation made simple

174439Citations
N/AReaders
Get full text

Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set

99423Citations
N/AReaders
Get full text

Projector augmented-wave method

74316Citations
N/AReaders
Get full text

Cited by Powered by Scopus

The void formation behaviors in working solid-state Li metal batteries

86Citations
N/AReaders
Get full text

Structural changes in the silver-carbon composite anode interlayer of solid-state batteries

49Citations
N/AReaders
Get full text

Increasing the Pressure-Free Stripping Capacity of the Lithium Metal Anode in Solid-State-Batteries by Carbon Nanotubes

43Citations
N/AReaders
Get full text

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Cite

CITATION STYLE

APA

Seymour, I. D., & Aguadero, A. (2021). Suppressing void formation in all-solid-state batteries: The role of interfacial adhesion on alkali metal vacancy transport. Journal of Materials Chemistry A, 9(35), 19901–19913. https://doi.org/10.1039/d1ta03254b

Readers over time

‘21‘22‘23‘24‘2505101520

Readers' Seniority

Tooltip

PhD / Post grad / Masters / Doc 20

67%

Researcher 8

27%

Professor / Associate Prof. 1

3%

Lecturer / Post doc 1

3%

Readers' Discipline

Tooltip

Materials Science 8

35%

Chemistry 6

26%

Engineering 6

26%

Energy 3

13%

Save time finding and organizing research with Mendeley

Sign up for free
0