Cargando…

A hybrid polymer protective layer with uniform Li(+) flux and self-adaption enabling dendrite-free Li metal anodes

Lithium (Li) metal is considered as an ideal negative electrode material for next-generation secondary batteries; however, the hideous dendrite growth and parasitic reactions hinder the practical applications of Li metal batteries. Herein, a hybrid polymer film composed of polyvinyl alcohol (PVA) an...

Descripción completa

Detalles Bibliográficos
Autores principales: We, Chaohui, Deng, Jinxiang, Xing, Jianxiong, Wang, Zihao, Song, Zhicui, Wang, Donghuan, Jiang, Jicheng, Wang, Xin, Zhou, Aijun, Zou, Wei, Li, Jingze
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10496765/
https://www.ncbi.nlm.nih.gov/pubmed/37705800
http://dx.doi.org/10.1039/d3na00248a
_version_ 1785105172342505472
author We, Chaohui
Deng, Jinxiang
Xing, Jianxiong
Wang, Zihao
Song, Zhicui
Wang, Donghuan
Jiang, Jicheng
Wang, Xin
Zhou, Aijun
Zou, Wei
Li, Jingze
author_facet We, Chaohui
Deng, Jinxiang
Xing, Jianxiong
Wang, Zihao
Song, Zhicui
Wang, Donghuan
Jiang, Jicheng
Wang, Xin
Zhou, Aijun
Zou, Wei
Li, Jingze
author_sort We, Chaohui
collection PubMed
description Lithium (Li) metal is considered as an ideal negative electrode material for next-generation secondary batteries; however, the hideous dendrite growth and parasitic reactions hinder the practical applications of Li metal batteries. Herein, a hybrid polymer film composed of polyvinyl alcohol (PVA) and polyacrylic acid (PAA) is adopted as an artificial protective layer to inhibit the dendritic formation and side reactions in Li metal anodes. PVA with large quantities of polar functional groups can induce even distribution of Li ions (Li(+)). Alternatively, PAA can in situ react with Li metal to form highly elastic and ionic conducting lithium polyacrylic acid (LiPAA), thereby enabling tight contact and flexible self-adaption with Li metal anodes. Therefore, such a rationally designed functional composite layer, with good binding ability and relatively high Li(+) conductivity, as well as excellent capability of homogenizing Li(+) flow, accordingly enables Li metal anodes to reveal dendrite-free plating/stripping behaviours and minimum volume variation. As a result, the PVA–PAA modified Li metal anode delivered stable cycling for 700 and 250 h, respectively, at current densities of 1 and 3 mA cm(−2) under an areal capacity of 1 mA h cm(−2), in a carbonate ester-based electrolyte without any additive, exhibiting boosted cycling and rate performances. The Li anode with a functional PVA–PAA hybrid interlayer can maintain the dense and smooth texture without dendrite formation after long cycles. The full cell of Li|LiFeO(4) with our modified Li anode and a cathode with a high areal capacity of 2.45 mA h cm(−2) delivers, change to achieved a long-term lifespan of 180 cycles at 1.0 C, with a capacity retention of 96.7%. This work demonstrates a simple and effective strategy of designing multi-functional artificial protective layers, targeting dendrite-free Li anodes.
format Online
Article
Text
id pubmed-10496765
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher RSC
record_format MEDLINE/PubMed
spelling pubmed-104967652023-09-13 A hybrid polymer protective layer with uniform Li(+) flux and self-adaption enabling dendrite-free Li metal anodes We, Chaohui Deng, Jinxiang Xing, Jianxiong Wang, Zihao Song, Zhicui Wang, Donghuan Jiang, Jicheng Wang, Xin Zhou, Aijun Zou, Wei Li, Jingze Nanoscale Adv Chemistry Lithium (Li) metal is considered as an ideal negative electrode material for next-generation secondary batteries; however, the hideous dendrite growth and parasitic reactions hinder the practical applications of Li metal batteries. Herein, a hybrid polymer film composed of polyvinyl alcohol (PVA) and polyacrylic acid (PAA) is adopted as an artificial protective layer to inhibit the dendritic formation and side reactions in Li metal anodes. PVA with large quantities of polar functional groups can induce even distribution of Li ions (Li(+)). Alternatively, PAA can in situ react with Li metal to form highly elastic and ionic conducting lithium polyacrylic acid (LiPAA), thereby enabling tight contact and flexible self-adaption with Li metal anodes. Therefore, such a rationally designed functional composite layer, with good binding ability and relatively high Li(+) conductivity, as well as excellent capability of homogenizing Li(+) flow, accordingly enables Li metal anodes to reveal dendrite-free plating/stripping behaviours and minimum volume variation. As a result, the PVA–PAA modified Li metal anode delivered stable cycling for 700 and 250 h, respectively, at current densities of 1 and 3 mA cm(−2) under an areal capacity of 1 mA h cm(−2), in a carbonate ester-based electrolyte without any additive, exhibiting boosted cycling and rate performances. The Li anode with a functional PVA–PAA hybrid interlayer can maintain the dense and smooth texture without dendrite formation after long cycles. The full cell of Li|LiFeO(4) with our modified Li anode and a cathode with a high areal capacity of 2.45 mA h cm(−2) delivers, change to achieved a long-term lifespan of 180 cycles at 1.0 C, with a capacity retention of 96.7%. This work demonstrates a simple and effective strategy of designing multi-functional artificial protective layers, targeting dendrite-free Li anodes. RSC 2023-08-04 /pmc/articles/PMC10496765/ /pubmed/37705800 http://dx.doi.org/10.1039/d3na00248a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
We, Chaohui
Deng, Jinxiang
Xing, Jianxiong
Wang, Zihao
Song, Zhicui
Wang, Donghuan
Jiang, Jicheng
Wang, Xin
Zhou, Aijun
Zou, Wei
Li, Jingze
A hybrid polymer protective layer with uniform Li(+) flux and self-adaption enabling dendrite-free Li metal anodes
title A hybrid polymer protective layer with uniform Li(+) flux and self-adaption enabling dendrite-free Li metal anodes
title_full A hybrid polymer protective layer with uniform Li(+) flux and self-adaption enabling dendrite-free Li metal anodes
title_fullStr A hybrid polymer protective layer with uniform Li(+) flux and self-adaption enabling dendrite-free Li metal anodes
title_full_unstemmed A hybrid polymer protective layer with uniform Li(+) flux and self-adaption enabling dendrite-free Li metal anodes
title_short A hybrid polymer protective layer with uniform Li(+) flux and self-adaption enabling dendrite-free Li metal anodes
title_sort hybrid polymer protective layer with uniform li(+) flux and self-adaption enabling dendrite-free li metal anodes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10496765/
https://www.ncbi.nlm.nih.gov/pubmed/37705800
http://dx.doi.org/10.1039/d3na00248a
work_keys_str_mv AT wechaohui ahybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT dengjinxiang ahybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT xingjianxiong ahybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT wangzihao ahybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT songzhicui ahybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT wangdonghuan ahybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT jiangjicheng ahybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT wangxin ahybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT zhouaijun ahybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT zouwei ahybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT lijingze ahybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT wechaohui hybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT dengjinxiang hybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT xingjianxiong hybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT wangzihao hybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT songzhicui hybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT wangdonghuan hybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT jiangjicheng hybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT wangxin hybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT zhouaijun hybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT zouwei hybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes
AT lijingze hybridpolymerprotectivelayerwithuniformlifluxandselfadaptionenablingdendritefreelimetalanodes