Halogen-Regulated Noncovalent Interactions in Coordination Polymers Enable Photothermal Conversion

Abstract Regulating intermolecular noncovalent interactions at the atomic level poses a significant challenge for the design and optimization of photothermal conversion materials in coordination polymers. Herein, we develop a series of one-dimensional zinc-based coordination polymers, [ZnX2(μ-dptz)]n (X = Cl, Br, I; 4,4′-dptz = 3,6-di(pyridin-4-yl)-1,2,4,5-tetrazine), where systematic variation of the terminal halogen modulates interchain C–H···X hydrogen bonds and anion···π interactions, whose strengths decrease in the order ZnCl2-dptz > ZnBr2-dptz > ZnI2-dptz. Halogen substitution effectively modulates the crystal packing and electronic distribution, endowing all CPs with broad visible-light absorption and excellent thermal stability. Under 525 nm laser irradiation, the CPs exhibit stable and reversible photothermal performance, and the photothermal conversion efficiency (η) follows ZnCl2-dptz (52.3%) > ZnBr2-dptz (44.0%) > ZnI2-dptz (41.9%). Photoluminescence results confirm that the strengthened noncovalent networks in ZnCl2-dptz significantly restrain radiative decay and maximize thermal energy dissipation. This work elucidates the halogen-modulated supramolecular interaction–photothermal performance relationship, offering a rational strategy for designing high-efficiency photothermal CPs.

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Journal
Inorganic Chemistry
Published
2026-10-06
DOI
https://doi.org/10.1021/acs.inorgchem.6c02919
Primary Topic
Metal-Organic Frameworks: Synthesis and Applications
Type
article
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article

Halogen-Regulated Noncovalent Interactions in Coordination Polymers Enable Photothermal Conversion

Zhao‐Peng Qi, Rui Wang, Jun Pan, Zhiqiang Fang et al.
Inorganic Chemistry
Metal-Organic Frameworks: Synthesis and Applications
article

Halogen-Regulated Noncovalent Interactions in Coordination Polymers Enable Photothermal Conversion

Zhao‐Peng Qi, Rui Wang, Jun Pan, Zhiqiang Fang, Jiaoyang Chen, Mingru Yin
article en

Abstract

Abstract Regulating intermolecular noncovalent interactions at the atomic level poses a significant challenge for the design and optimization of photothermal conversion materials in coordination polymers. Herein, we develop a series of one-dimensional zinc-based coordination polymers, [ZnX2(μ-dptz)]n (X = Cl, Br, I; 4,4′-dptz = 3,6-di(pyridin-4-yl)-1,2,4,5-tetrazine), where systematic variation of the terminal halogen modulates interchain C–H···X hydrogen bonds and anion···π interactions, whose strengths decrease in the order ZnCl2-dptz > ZnBr2-dptz > ZnI2-dptz. Halogen substitution effectively modulates the crystal packing and electronic distribution, endowing all CPs with broad visible-light absorption and excellent thermal stability. Under 525 nm laser irradiation, the CPs exhibit stable and reversible photothermal performance, and the photothermal conversion efficiency (η) follows ZnCl2-dptz (52.3%) > ZnBr2-dptz (44.0%) > ZnI2-dptz (41.9%). Photoluminescence results confirm that the strengthened noncovalent networks in ZnCl2-dptz significantly restrain radiative decay and maximize thermal energy dissipation. This work elucidates the halogen-modulated supramolecular interaction–photothermal performance relationship, offering a rational strategy for designing high-efficiency photothermal CPs.

Inorganic Chemistry
Huangshan University (CN)
Openalex Percentile: Top 27%
Metal-Organic Frameworks: Synthesis and Applications
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Halogen-Regulated Noncovalent Interactions in Coordination Polymers Enable Photothermal Conversion — Zhao‐Peng Qi, Rui Wang, et al. · Inorganic Chemistry (2026) | TGRS Research Map | TGRS