摘要
Here, we report a composite additive strategy that integrates sodium hexametaphosphate (SHMP) and sodium molybdate (NMO) to achieve cooperative regulation of the electrolyte bulk chemistry and the Zn–electrolyte interface. SHMP reconstructs the Zn2+ solvation structure through controlled coordination, while NMO mitigates overchelation via pH buffering and preferential interfacial adsorption. Their cooperation induces the in situ formation of a chemically coupled Mo/P-rich interphase, which regulates ion flux, limits proton-driven side reactions, and maintains Zn deposition kinetics. Comprehensive experiments and theoretical calculations elucidate the bulk–interface coupling governing Zn2+ transport and reversibility. Consequently, the resulting electrolyte enables 3700 h reversible cycling in Zn||Zn cells, 99.85% average Coulombic efficiency over 5100 cycles in Zn||Cu cells, and 78.9% capacity retention after 2500 cycles in Zn||MnO2 cells. This work presents a general dual-regulation paradigm for Zn electrolyte design and provides mechanistic insights into developing aqueous zinc-ion batteries.
| 原文 | 英語 |
|---|---|
| 頁(從 - 到) | 2734-2745 |
| 頁數 | 12 |
| 期刊 | ACS Energy Letters |
| 卷 | 11 |
| 發行號 | 3 |
| DOIs | |
| 出版狀態 | 已發佈 - 2026 3月 13 |
UN SDG
此研究成果有助於以下永續發展目標
-
SDG 7 可負擔的潔淨能源
ASJC Scopus subject areas
- 化學(雜項)
- 可再生能源、永續發展與環境
- 燃料技術
- 能源工程與電力技術
- 材料化學
指紋
深入研究「Protective Solid Interphase via Composite Additives for Long-Life Aqueous Zinc Batteries」主題。共同形成了獨特的指紋。引用此
- APA
- Standard
- Harvard
- Vancouver
- Author
- BIBTEX
- RIS