Cu-MOF/Iodine Synergistic Electrochromic System for Energy-Efficient Smart Windows

Abstract The electrochromic behavior of reversible iodine electrodeposition is governed by the coupled kinetics of interfacial charge transfer and species diffusion, yet soluble polyiodides induce a severe shuttle effect, limiting device durability. Herein, through an interface–electrolyte synergistic strategy, we construct a Cu-MOF (HKUST-1) host interface and a water-in-salt electrolyte system to regulate iodine redox electrochemistry. The unsaturated copper coordination sites of HKUST-1 chemically anchor polyiodides to suppress the shuttle behavior, and the reversible redox activity of Cu2+ sites provides additional electron transfer pathways for iodine conversion. Impressively, this system achieves voltage-selective spectral modulation covering visible and near-infrared regions via a preoxidation pathway. The modified electrode delivers an optical contrast of 87.37% at 1100 nm and 91.41% at 550 nm, retaining 89.06% of its optical contrast after 6000 cycles, showing promise for smart window applications. This multifunctional and low-cost strategy provides a unique pathway for systems plagued by soluble intermediates.

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Publication Details

Journal
The Journal of Physical Chemistry Letters
Published
2026-09-25
DOI
https://doi.org/10.1021/acs.jpclett.6c02272
Primary Topic
Transition Metal Oxide Nanomaterials
Type
article
Field-Weighted Citation Impact
0.00
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Cu-MOF/Iodine Synergistic Electrochromic System for Energy-Efficient Smart Windows

Qingxiu Fan, Keying Feng, Zheng Chen, Zhiyong Liu et al.
The Journal of Physical Chemistry Letters
Transition Metal Oxide Nanomaterials
article

Cu-MOF/Iodine Synergistic Electrochromic System for Energy-Efficient Smart Windows

Qingxiu Fan, Keying Feng, Zheng Chen, Zhiyong Liu, Hao Zhang
article en

Abstract

Abstract The electrochromic behavior of reversible iodine electrodeposition is governed by the coupled kinetics of interfacial charge transfer and species diffusion, yet soluble polyiodides induce a severe shuttle effect, limiting device durability. Herein, through an interface–electrolyte synergistic strategy, we construct a Cu-MOF (HKUST-1) host interface and a water-in-salt electrolyte system to regulate iodine redox electrochemistry. The unsaturated copper coordination sites of HKUST-1 chemically anchor polyiodides to suppress the shuttle behavior, and the reversible redox activity of Cu2+ sites provides additional electron transfer pathways for iodine conversion. Impressively, this system achieves voltage-selective spectral modulation covering visible and near-infrared regions via a preoxidation pathway. The modified electrode delivers an optical contrast of 87.37% at 1100 nm and 91.41% at 550 nm, retaining 89.06% of its optical contrast after 6000 cycles, showing promise for smart window applications. This multifunctional and low-cost strategy provides a unique pathway for systems plagued by soluble intermediates.

The Journal of Physical Chemistry Letters
Yunnan Normal University (CN), Jilin University (CN)
Affordable and clean energy
Openalex Percentile: Top 23%
Transition Metal Oxide Nanomaterials
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