A Self-Regulated Electrostatic Shielding Layer toward Dendrite-Free Zn Batteries

© 2022 Wiley-VCH GmbH.

Détails bibliographiques
Publié dans:Advanced materials (Deerfield Beach, Fla.). - 1998. - 34(2022), 37 vom: 01. Sept., Seite e2203104
Auteur principal: Hu, Zhengqiang (Auteur)
Autres auteurs: Zhang, Fengling, Zhao, Yi, Wang, Huirong, Huang, Yongxin, Wu, Feng, Chen, Renjie, Li, Li
Format: Article en ligne
Langue:English
Publié: 2022
Accès à la collection:Advanced materials (Deerfield Beach, Fla.)
Sujets:Journal Article Zn batteries Zn deposition regulation hydrogen evolution suppression rare metal additives
Description
Résumé:© 2022 Wiley-VCH GmbH.
Although aqueous Zn batteries have become a more sustainable alternative to lithium-ion batteries owing to their intrinsic security, their practical applications are limited by dendrite formation and hydrogen reactions. The first application of a rare earth metal type addition to Zn batteries, cerium chloride (CeCl3 ), as an effective, low-cost, and green electrolyte additive that facilitates the formation of a dynamic electrostatic shielding layer around the Zn protuberance to induce uniform Zn deposition is presented. After introducing CeCl3 additives, the electrochemical characterizations, in situ optical microscopy observation, in situ differential electrochemical mass spectrometry, along with density functional theory calculations, and finite element method simulations reveal resisted Zn dendritic growth and enhanced electrolyte stability. As a result, the Zn-Zn cells using the CeCl3 additive exhibit a long cycling stability of 2600 h at 2 mA cm-2 , an impressive cumulative areal capacity of 3.6 Ah cm-2 at 40 mA cm-2 , and a high Coulombic efficiency of ≈99.7%. The fact that the Zn-LiFePO4 cells with proposed electrolyte retain capacity significantly better than the additive-free case is even more exciting
Description:Date Revised 15.09.2022
published: Print-Electronic
Citation Status PubMed-not-MEDLINE
ISSN:1521-4095
DOI:10.1002/adma.202203104