Cited time in webofscience Cited time in scopus

Enhanced compatibility of a polymer-based electrolyte with Li-metal for stable and dendrite-free all-solid-state Li-metal batteries

Title
Enhanced compatibility of a polymer-based electrolyte with Li-metal for stable and dendrite-free all-solid-state Li-metal batteries
Author(s)
Jamal, HasanKhan, FirozSi, Hyeong-RokKim, Jae Hyun
Issued Date
2021-12
Citation
Journal of Materials Chemistry A, v.9, no.48, pp.27304 - 27319
Type
Article
Keywords
IONIC-CONDUCTIVITY ENHANCEMENTCORE-SHELL STRUCTUREELECTROCHEMICAL PERFORMANCEOXIDE) ELECTROLYTESHIGH-VOLTAGELITHIUMMEMBRANEDESIGNNANOCOMPOSITENANOPARTICLES
ISSN
2050-7488
Abstract
To meet the rapidly growing demand for high-energy storage, it will be crucial to develop high power all-solid-state Li-metal batteries (SS-LMBs). In SSLMBs, the solid-state electrolyte enables high performance and long-term cycling stability. To investigate, we employed a YNa zeolite as a ceramic filler and a large fraction of Li-salt to synthesize a solid composite polymer electrolyte (YNa-CPE) with an enhanced work function. This enabled the creation of a stable interfacial layer between the YNa-CPE and Li-metal and prevented the growth of Li-dendrites. The galvanostatic lithium plating and stripping analysis of a symmetric [Li|YNa-CPE|Li] cell was initially conducted at different current densities for more than 1500 h, revealing uniform overpotential, which confirmed no significant growth of lithium dendrites even after the application of high current density. The Li-ion transference number greatly improved to 0.84. An excellent ionic conductivity of 1.66 × 10−2 S cm−1 was achieved at 60 °C. A capacity of 156.63 mA h g−1 was obtained (for the LFP cathode) at a Li-salt concentration of 35%, with a capacity retention rate of >95% over 100 cycles. By improving compatibility with the cathode, stability can be further improved. This investigation presents a facile tactic to fabricate superior performance and long-term stable SS-LMBs. © The Royal Society of Chemistry 2021.
URI
http://hdl.handle.net/20.500.11750/15884
DOI
10.1039/d1ta06886e
Publisher
Royal Society of Chemistry
Related Researcher
  • 김재현 Kim, Jae Hyun 에너지환경연구부
  • Research Interests 에너지; 배터리; 고체전해질; 태양전지; 전기차; 리튬이온배터리
Files in This Item:

There are no files associated with this item.

Appears in Collections:
Division of Energy Technology 1. Journal Articles

qrcode

  • twitter
  • facebook
  • mendeley

Items in Repository are protected by copyright, with all rights reserved, unless otherwise indicated.

BROWSE