Innovative 2D dioxonium vanadium oxide: enhancing stability in aqueous zinc-ion battery cathodes

Vanadium oxide-based compounds have attracted significant interest as battery materials, especially in aqueous Zn-ion batteries, due to favorable properties and compatibility in Zn-ion systems. In a simple hydrothermal method with moderate conditions, a novel vanadium oxide compound has been synthes...

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Published in:RSC ADVANCES
Main Authors: De Luna, Yannis; Mohamed, Zakiah; Dawoud, Abdulilah; Bensalah, Nasr
Format: Article
Language:English
Published: ROYAL SOC CHEMISTRY 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-recordWOS:001373916900001
author De Luna
Yannis; Mohamed
Zakiah; Dawoud
Abdulilah; Bensalah
Nasr
spellingShingle De Luna
Yannis; Mohamed
Zakiah; Dawoud
Abdulilah; Bensalah
Nasr
Innovative 2D dioxonium vanadium oxide: enhancing stability in aqueous zinc-ion battery cathodes
Chemistry
author_facet De Luna
Yannis; Mohamed
Zakiah; Dawoud
Abdulilah; Bensalah
Nasr
author_sort De Luna
spelling De Luna, Yannis; Mohamed, Zakiah; Dawoud, Abdulilah; Bensalah, Nasr
Innovative 2D dioxonium vanadium oxide: enhancing stability in aqueous zinc-ion battery cathodes
RSC ADVANCES
English
Article
Vanadium oxide-based compounds have attracted significant interest as battery materials, especially in aqueous Zn-ion batteries, due to favorable properties and compatibility in Zn-ion systems. In a simple hydrothermal method with moderate conditions, a novel vanadium oxide compound has been synthesized using ammonium metavanadate with oxalic acid as a reducing agent. Various characterization techniques confirmed the formation of layered V3O8(H3O)2 nanoplatelets with a tetragonal crystal structure. The as-prepared cathode material was tested in coin cells against a Zn metal anode in two aqueous electrolytes of the same concentration: ZnSO47H2O and Zn(CF3SO3)2. Electrochemical results showed high reversibility of Zn insertion/de-insertion and impressive cycling stability with aqueous Zn(CF3SO3)2 electrolyte. Notably, the cathode material delivered a specific capacity of 150 mA h g-1 at 100 mA g-1 and a relatively constant coulombic efficiency near 100%, indicating impressive stability during cycling and reversibility of charge/discharge electrochemical reactions. Post-mortem characterization exposed a significant structural change in the as-prepared cathode material from nanoplatelets to nanoflakes after full discharge, which reverted to nanoplatelets after charging, reflecting the high level of reversibility of the material. DFT calculations revealed a structural change in the material after cycling, providing mechanistic insights in Zn2+-ion storage.
ROYAL SOC CHEMISTRY

2046-2069
2024
14
53
10.1039/d4ra06871h
Chemistry

WOS:001373916900001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-recordWOS:001373916900001
title Innovative 2D dioxonium vanadium oxide: enhancing stability in aqueous zinc-ion battery cathodes
title_short Innovative 2D dioxonium vanadium oxide: enhancing stability in aqueous zinc-ion battery cathodes
title_full Innovative 2D dioxonium vanadium oxide: enhancing stability in aqueous zinc-ion battery cathodes
title_fullStr Innovative 2D dioxonium vanadium oxide: enhancing stability in aqueous zinc-ion battery cathodes
title_full_unstemmed Innovative 2D dioxonium vanadium oxide: enhancing stability in aqueous zinc-ion battery cathodes
title_sort Innovative 2D dioxonium vanadium oxide: enhancing stability in aqueous zinc-ion battery cathodes
container_title RSC ADVANCES
language English
format Article
description Vanadium oxide-based compounds have attracted significant interest as battery materials, especially in aqueous Zn-ion batteries, due to favorable properties and compatibility in Zn-ion systems. In a simple hydrothermal method with moderate conditions, a novel vanadium oxide compound has been synthesized using ammonium metavanadate with oxalic acid as a reducing agent. Various characterization techniques confirmed the formation of layered V3O8(H3O)2 nanoplatelets with a tetragonal crystal structure. The as-prepared cathode material was tested in coin cells against a Zn metal anode in two aqueous electrolytes of the same concentration: ZnSO47H2O and Zn(CF3SO3)2. Electrochemical results showed high reversibility of Zn insertion/de-insertion and impressive cycling stability with aqueous Zn(CF3SO3)2 electrolyte. Notably, the cathode material delivered a specific capacity of 150 mA h g-1 at 100 mA g-1 and a relatively constant coulombic efficiency near 100%, indicating impressive stability during cycling and reversibility of charge/discharge electrochemical reactions. Post-mortem characterization exposed a significant structural change in the as-prepared cathode material from nanoplatelets to nanoflakes after full discharge, which reverted to nanoplatelets after charging, reflecting the high level of reversibility of the material. DFT calculations revealed a structural change in the material after cycling, providing mechanistic insights in Zn2+-ion storage.
publisher ROYAL SOC CHEMISTRY
issn
2046-2069
publishDate 2024
container_volume 14
container_issue 53
doi_str_mv 10.1039/d4ra06871h
topic Chemistry
topic_facet Chemistry
accesstype
id WOS:001373916900001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-recordWOS:001373916900001
record_format wos
collection Web of Science (WoS)
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