Cargando…

Quantification of the ion transport mechanism in protective polymer coatings on lithium metal anodes

Protective Polymer Coatings (PPCs) have been proposed to protect lithium metal anodes in rechargeable batteries to stabilize the Li/electrolyte interface and to extend the cycle life by reducing parasitic reactions and improving the lithium deposition morphology. However, the ion transport mechanism...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhou, Hongyao, Liu, Haodong, Xing, Xing, Wang, Zijun, Yu, Sicen, Veith, Gabriel M., Liu, Ping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153219/
https://www.ncbi.nlm.nih.gov/pubmed/34123330
http://dx.doi.org/10.1039/d0sc06651f
_version_ 1783698752343638016
author Zhou, Hongyao
Liu, Haodong
Xing, Xing
Wang, Zijun
Yu, Sicen
Veith, Gabriel M.
Liu, Ping
author_facet Zhou, Hongyao
Liu, Haodong
Xing, Xing
Wang, Zijun
Yu, Sicen
Veith, Gabriel M.
Liu, Ping
author_sort Zhou, Hongyao
collection PubMed
description Protective Polymer Coatings (PPCs) have been proposed to protect lithium metal anodes in rechargeable batteries to stabilize the Li/electrolyte interface and to extend the cycle life by reducing parasitic reactions and improving the lithium deposition morphology. However, the ion transport mechanism in PPCs remains unclear. Specifically, the degree of polymer swelling in the electrolyte and the influence of polymer/solvent/ion interactions are never quantified. Here we use poly(acrylonitrile-co-butadiene) (PAN–PBD) with controlled cross-link densities to quantify how the swelling ratio of the PPC affects conductivity, Li(+) ion selectivity, activation energy, and rheological properties. The large difference in polarities between PAN (polar) and PBD (non-polar) segments allows the comparison of PPC properties when swollen in carbonate (high polarity) and ether (low polarity) electrolytes, which are the two most common classes of electrolytes. We find that a low swelling ratio of the PPC increases the transference number of Li(+) ions while decreasing the conductivity. The activation energy only increases when the PPC is swollen in the carbonate electrolyte because of the strong ion–dipole interaction in the PAN phase, which is absent in the non-polar PBD phase. Theoretical models using Hansen solubility parameters and a percolation model have been shown to be effective in predicting the swelling behavior of PPCs in organic solvents and to estimate the conductivity. The trade-off between conductivity and the transference number is the primary challenge for PPCs. Our study provides general guidelines for PPC design, which favors the use of non-polar polymers with low polarity organic electrolytes.
format Online
Article
Text
id pubmed-8153219
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-81532192021-06-11 Quantification of the ion transport mechanism in protective polymer coatings on lithium metal anodes Zhou, Hongyao Liu, Haodong Xing, Xing Wang, Zijun Yu, Sicen Veith, Gabriel M. Liu, Ping Chem Sci Chemistry Protective Polymer Coatings (PPCs) have been proposed to protect lithium metal anodes in rechargeable batteries to stabilize the Li/electrolyte interface and to extend the cycle life by reducing parasitic reactions and improving the lithium deposition morphology. However, the ion transport mechanism in PPCs remains unclear. Specifically, the degree of polymer swelling in the electrolyte and the influence of polymer/solvent/ion interactions are never quantified. Here we use poly(acrylonitrile-co-butadiene) (PAN–PBD) with controlled cross-link densities to quantify how the swelling ratio of the PPC affects conductivity, Li(+) ion selectivity, activation energy, and rheological properties. The large difference in polarities between PAN (polar) and PBD (non-polar) segments allows the comparison of PPC properties when swollen in carbonate (high polarity) and ether (low polarity) electrolytes, which are the two most common classes of electrolytes. We find that a low swelling ratio of the PPC increases the transference number of Li(+) ions while decreasing the conductivity. The activation energy only increases when the PPC is swollen in the carbonate electrolyte because of the strong ion–dipole interaction in the PAN phase, which is absent in the non-polar PBD phase. Theoretical models using Hansen solubility parameters and a percolation model have been shown to be effective in predicting the swelling behavior of PPCs in organic solvents and to estimate the conductivity. The trade-off between conductivity and the transference number is the primary challenge for PPCs. Our study provides general guidelines for PPC design, which favors the use of non-polar polymers with low polarity organic electrolytes. The Royal Society of Chemistry 2021-04-12 /pmc/articles/PMC8153219/ /pubmed/34123330 http://dx.doi.org/10.1039/d0sc06651f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhou, Hongyao
Liu, Haodong
Xing, Xing
Wang, Zijun
Yu, Sicen
Veith, Gabriel M.
Liu, Ping
Quantification of the ion transport mechanism in protective polymer coatings on lithium metal anodes
title Quantification of the ion transport mechanism in protective polymer coatings on lithium metal anodes
title_full Quantification of the ion transport mechanism in protective polymer coatings on lithium metal anodes
title_fullStr Quantification of the ion transport mechanism in protective polymer coatings on lithium metal anodes
title_full_unstemmed Quantification of the ion transport mechanism in protective polymer coatings on lithium metal anodes
title_short Quantification of the ion transport mechanism in protective polymer coatings on lithium metal anodes
title_sort quantification of the ion transport mechanism in protective polymer coatings on lithium metal anodes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153219/
https://www.ncbi.nlm.nih.gov/pubmed/34123330
http://dx.doi.org/10.1039/d0sc06651f
work_keys_str_mv AT zhouhongyao quantificationoftheiontransportmechanisminprotectivepolymercoatingsonlithiummetalanodes
AT liuhaodong quantificationoftheiontransportmechanisminprotectivepolymercoatingsonlithiummetalanodes
AT xingxing quantificationoftheiontransportmechanisminprotectivepolymercoatingsonlithiummetalanodes
AT wangzijun quantificationoftheiontransportmechanisminprotectivepolymercoatingsonlithiummetalanodes
AT yusicen quantificationoftheiontransportmechanisminprotectivepolymercoatingsonlithiummetalanodes
AT veithgabrielm quantificationoftheiontransportmechanisminprotectivepolymercoatingsonlithiummetalanodes
AT liuping quantificationoftheiontransportmechanisminprotectivepolymercoatingsonlithiummetalanodes