Potential‐Controlled Ammonium‐Assisted Reversible Electrodeposition of Polyoxometalates for Hybrid Redox Flow Batteries

ABSTRACT Counter‐cations play a key role in modulating the redox chemistry and phase behavior of polyoxometalates (POMs). In this study, we report a potential‐controlled, ammonium‐assisted electrodeposition of POMs from nonaqueous electrolytes. Owing to its tetrahedral geometry and hydrogen‐bonding capability, NH 4 + uniquely stabilizes reduced POM clusters at the electrode interface, enabling reversible solid‐to‐solution transitions. Using the mixed‐valence vanadium cluster [V 18 O 46 (NO 3 )] 5− and Keggin‐type POM cluster, [PMo 12 O 40 ] 3− as model systems, we demonstrate controlled reversible charge‐transfer dynamics, including effective mass deposition under reductive potentials and complete dissolution upon oxidation, as confirmed by cyclic voltammetry and electrochemical quartz crystal microbalance (EQCM) measurements. Microscopic and spectroscopic investigations reveal that electrodeposition at low potentials involves partial reduction of redox‐active metal centers within the POM framework, accompanied by NH 4 + incorporation via hydrogen‐bonded networks, forming NH 4 + ‐coupled POM‐derived deposits, which exhibit a significantly different pathway from the classic metal electrodeposition (metal plating). Leveraging this reversible behavior, we propose the design of POM electrodeposition‐based hybrid redox flow battery (RFB), where NH 4 + ‐driven POM electrodeposition/dissolution in the negative half‐cell enables electron storage/release during charge/discharge processes, and validate the design through proof‐of‐concept battery demonstrations. These findings provide important initial insights into NH 4 + ‐driven reversible POM electrodeposition and highlight its potential in advancing electrochemical energy storage technologies.

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Publication Details

Journal
Advanced Science
Published
2026-09-16
DOI
https://doi.org/10.1002/advs.77673
Primary Topic
Advanced battery technologies research
Type
article
Field-Weighted Citation Impact
0.00

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article

Potential‐Controlled Ammonium‐Assisted Reversible Electrodeposition of Polyoxometalates for Hybrid Redox Flow Batteries

Nikhil Arya, Montaha Anjass, Ke Wang, Sadia Shahid
Advanced Science
Advanced battery technologies research
article

Potential‐Controlled Ammonium‐Assisted Reversible Electrodeposition of Polyoxometalates for Hybrid Redox Flow Batteries

Nikhil Arya, Montaha Anjass, Ke Wang, Sadia Shahid
article en

Abstract

ABSTRACT Counter‐cations play a key role in modulating the redox chemistry and phase behavior of polyoxometalates (POMs). In this study, we report a potential‐controlled, ammonium‐assisted electrodeposition of POMs from nonaqueous electrolytes. Owing to its tetrahedral geometry and hydrogen‐bonding capability, NH 4 + uniquely stabilizes reduced POM clusters at the electrode interface, enabling reversible solid‐to‐solution transitions. Using the mixed‐valence vanadium cluster [V 18 O 46 (NO 3 )] 5− and Keggin‐type POM cluster, [PMo 12 O 40 ] 3− as model systems, we demonstrate controlled reversible charge‐transfer dynamics, including effective mass deposition under reductive potentials and complete dissolution upon oxidation, as confirmed by cyclic voltammetry and electrochemical quartz crystal microbalance (EQCM) measurements. Microscopic and spectroscopic investigations reveal that electrodeposition at low potentials involves partial reduction of redox‐active metal centers within the POM framework, accompanied by NH 4 + incorporation via hydrogen‐bonded networks, forming NH 4 + ‐coupled POM‐derived deposits, which exhibit a significantly different pathway from the classic metal electrodeposition (metal plating). Leveraging this reversible behavior, we propose the design of POM electrodeposition‐based hybrid redox flow battery (RFB), where NH 4 + ‐driven POM electrodeposition/dissolution in the negative half‐cell enables electron storage/release during charge/discharge processes, and validate the design through proof‐of‐concept battery demonstrations. These findings provide important initial insights into NH 4 + ‐driven reversible POM electrodeposition and highlight its potential in advancing electrochemical energy storage technologies.

Advanced Science
Universität Ulm (DE), University of Sharjah (AE), Institute of Inorganic Chemistry of the Slovak Academy of Sciences (SK), Technische Hochschule Ulm (DE)
Center of Excellence for Learning in Education, Science and Technology, University of Sharjah, Deutsche Forschungsgemeinschaft, Universität Ulm
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced battery technologies research
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