Phase‐Engineered Electronic Structure of ZrO 2 Regulates the Kinetic Thermodynamic Balance of Polyiodide Chemistry in Aqueous Zn–I 2 Batteries

ABSTRACT Aqueous Zn–I 2 batteries are fundamentally limited by the challenge of simultaneously suppressing polyiodide shuttling and maintaining rapid interfacial conversion kinetics. Herein, we demonstrate that crystal‐phase‐dependent electronic reconstruction of ZrO 2 enables regulation of this adsorption–conversion balance. A tetragonal ZrO 2 /carbon‐sphere composite (CS/t‐ZrO 2 ) is constructed through a polydopamine‐assisted confined‐growth strategy, while monoclinic ZrO 2 (m‐ZrO 2 ) serves as the phase‐controlled counterpart. Comprehensive structural, spectroscopic, and electrochemical analyses reveal that the tetragonal phase possesses a higher concentration of oxygen‐vacancy‐associated defect states and a lower work function, resulting in enhanced intrinsic interfacial charge‐transfer capability. Operando UV–vis and in situ Raman spectroscopy demonstrate that the carbon framework effectively suppresses polyiodide diffusion, whereas the tetragonal ZrO 2 interface accelerates reversible iodine conversion, together establishing a favorable adsorption‐conversion balance. Density functional theory calculations further show that the tetragonal phase moderates iodine‐intermediate adsorption and reduces the thermodynamic barriers of the I 2 /I − conversion pathway, accounting for the experimentally observed fast reaction kinetics and reduced polarization. Consequently, the CS/t‐ZrO 2 /I 2 cathode delivers a reversible capacity of 215 mAh g −1 with 97% capacity retention after 2000 cycles at an iodine loading of 4.7 mg cm −2 . This work establishes crystal‐phase engineering as a viable strategy to modulate interfacial electronic structure for conversion‐type aqueous energy‐storage systems.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-25
DOI
https://doi.org/10.1002/adfm.78723
Primary Topic
Advanced battery technologies research
Type
article
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article

Phase‐Engineered Electronic Structure of ZrO 2 Regulates the Kinetic Thermodynamic Balance of Polyiodide Chemistry in Aqueous Zn–I 2 Batteries

Nadeem Hussain, Weiguang Fang, Haibo Hu, Cong Chen et al.
Advanced Functional Materials
Advanced battery technologies research
article

Phase‐Engineered Electronic Structure of ZrO 2 Regulates the Kinetic Thermodynamic Balance of Polyiodide Chemistry in Aqueous Zn–I 2 Batteries

Nadeem Hussain, Weiguang Fang, Haibo Hu, Cong Chen, Changfei Sun, Lei Zhang, Jinbao Chen
article en

Abstract

ABSTRACT Aqueous Zn–I 2 batteries are fundamentally limited by the challenge of simultaneously suppressing polyiodide shuttling and maintaining rapid interfacial conversion kinetics. Herein, we demonstrate that crystal‐phase‐dependent electronic reconstruction of ZrO 2 enables regulation of this adsorption–conversion balance. A tetragonal ZrO 2 /carbon‐sphere composite (CS/t‐ZrO 2 ) is constructed through a polydopamine‐assisted confined‐growth strategy, while monoclinic ZrO 2 (m‐ZrO 2 ) serves as the phase‐controlled counterpart. Comprehensive structural, spectroscopic, and electrochemical analyses reveal that the tetragonal phase possesses a higher concentration of oxygen‐vacancy‐associated defect states and a lower work function, resulting in enhanced intrinsic interfacial charge‐transfer capability. Operando UV–vis and in situ Raman spectroscopy demonstrate that the carbon framework effectively suppresses polyiodide diffusion, whereas the tetragonal ZrO 2 interface accelerates reversible iodine conversion, together establishing a favorable adsorption‐conversion balance. Density functional theory calculations further show that the tetragonal phase moderates iodine‐intermediate adsorption and reduces the thermodynamic barriers of the I 2 /I − conversion pathway, accounting for the experimentally observed fast reaction kinetics and reduced polarization. Consequently, the CS/t‐ZrO 2 /I 2 cathode delivers a reversible capacity of 215 mAh g −1 with 97% capacity retention after 2000 cycles at an iodine loading of 4.7 mg cm −2 . This work establishes crystal‐phase engineering as a viable strategy to modulate interfacial electronic structure for conversion‐type aqueous energy‐storage systems.

Advanced Functional Materials
Qinghai University (CN), Anhui University (CN), Hefei Normal University (CN), Hefei University (CN)
Affordable and clean energy
Openalex Percentile: Top 21%
Advanced battery technologies research
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