Synergy between central zinc coordination and extended π-conjugation: Zinc phthalocyanine as an optimal artificial interphase for highly reversible aqueous zinc metal anodes

Aqueous zinc-ion batteries are promising for low-cost, safe large-scale energy storage, yet their practical deployment is plagued by zinc dendrite growth and water-induced side reactions. Herein, four structurally defined conjugated macrocycles (Tpp, Pc, ZnTpp, ZnPc) are employed as Zn anode protective coatings to establish molecular structure−performance correlations. Experimental and theoretical results reveal that ZnPc integrates the dual advantages of central Zn coordination and extended π-conjugation to optimize interfacial stability. The zinc-coordinated center acts as zincophilic sites to reduce nucleation overpotential and suppress hydrogen evolution by lowering the LUMO level, while the large π-network boosts electrical conductivity, accelerates ion desolvation, increases Zn transference number, and imparts hydrophobicity to isolate water. Benefiting from these synergistic effects, the ZnPc-modified Zn anode achieves ultra-long symmetric cycling (2000 h), a high Coulombic efficiency of 99.53% over 2500 half-cell cycles, and superior full-cell stability with a capacity retention of 75.74% after 5000 cycles. This work proposes a reliable molecular engineering strategy for high-stability Zn anodes, offering insights into advanced aqueous battery design.

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Publication Details

Journal
Journal of Power Sources
Published
2026-10-09
DOI
https://doi.org/10.1016/j.jpowsour.2026.241480
Primary Topic
Advanced battery technologies research
Type
article
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article

Synergy between central zinc coordination and extended π-conjugation: Zinc phthalocyanine as an optimal artificial interphase for highly reversible aqueous zinc metal anodes

Jiajie Pan, Yonggang Min, Yinsen Huang, Huanhuan Zhang et al.
Journal of Power Sources
Advanced battery technologies research
article

Synergy between central zinc coordination and extended π-conjugation: Zinc phthalocyanine as an optimal artificial interphase for highly reversible aqueous zinc metal anodes

Jiajie Pan, Yonggang Min, Yinsen Huang, Huanhuan Zhang, Jiangteng Xie, Jinquan Xian, Hao Wang, Runlin Huang
article en

Abstract

Aqueous zinc-ion batteries are promising for low-cost, safe large-scale energy storage, yet their practical deployment is plagued by zinc dendrite growth and water-induced side reactions. Herein, four structurally defined conjugated macrocycles (Tpp, Pc, ZnTpp, ZnPc) are employed as Zn anode protective coatings to establish molecular structure−performance correlations. Experimental and theoretical results reveal that ZnPc integrates the dual advantages of central Zn coordination and extended π-conjugation to optimize interfacial stability. The zinc-coordinated center acts as zincophilic sites to reduce nucleation overpotential and suppress hydrogen evolution by lowering the LUMO level, while the large π-network boosts electrical conductivity, accelerates ion desolvation, increases Zn transference number, and imparts hydrophobicity to isolate water. Benefiting from these synergistic effects, the ZnPc-modified Zn anode achieves ultra-long symmetric cycling (2000 h), a high Coulombic efficiency of 99.53% over 2500 half-cell cycles, and superior full-cell stability with a capacity retention of 75.74% after 5000 cycles. This work proposes a reliable molecular engineering strategy for high-stability Zn anodes, offering insights into advanced aqueous battery design.

Journal of Power SourcesVol. 696
Guangdong University of Technology (CN)
Openalex Percentile: Top 23%
Advanced battery technologies research
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Synergy between central zinc coordination and extended π-conjugation: Zinc phthalocyanine as an optimal artificial interphase for highly reversible aqueous zinc metal anodes — Jiajie Pan, Yonggang Min, et al. · Journal of Power Sources (2026) | TGRS Research Map | TGRS