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Updated: Jan 17, 2026

Zinc-Sponge Battery Electrodes that Suppress Dendrites
Published on: September 29, 2020
A Vacancy-Rich Core-Shell Artificial Solid Electrolyte Interphase Design to Manage Anode Chemistry for Aqueous Zinc
Yihan Jiao1, Anyu Zheng1, Haobo Wang1
1Jiangsu Provincial Key Laboratory of Green & Functional Materials and Environmental Chemistry, School of Chemistry and Chemical Engineering, Yangzhou University, Yangzhou225002, China.
None:
Aqueous zinc-based battery technologies have attracted increasing interest toward safe and sustainable energy storage. Nonetheless, Zn metal anodes face huge challenges in aqueous systems such as serious dendrite growth, corrosion, hydrogen gas evolution, and self-discharge by redox-active species shuttle like polyiodide. Defective TiO2-x nanoparticles have been proven effective to address the anode interfacial issues, while the structural tunability of TiO2-x materials with facile fabrication remains to be further explored for advancing Zn chemistry. Herein, we report an effective artificial solid electrolyte interphase (a-SEI) strategy using a core-shell defective TiO2-x-based nanocomposite for improving Zn anodes. This mesoporous a-SEI endows sufficient active sites, improved electrolyte wettability, and robust interface. More importantly, the defective a-SEI can remarkably improve the zinc affinity that guides its plating and lower the HER reactivity, as evidenced by ex-situ and in situ measurements. Consequently, the defective a-SEI-modified Zn anodes achieve a much more stabilized cycling performance in both symmetric cells and Zn-I2 full cells. Briefly, this work offers a feasible a-SEI solution and broadens the structure scope of TiO2-x materials for advancing Zn chemistry.
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