摘要
Aqueous zinc anodes have been plagued by dendrite growth and interfacial side reactions. Here, we construct an angstrom scale two-dimensional (2D) ionic sieve to resolve the trade-off between high ion flux and fast desolvation kinetics. The interlayer spacing of a potassium intercalated highly expanded graphene oxide (K+-heGO) membrane is precisely engineered to 1.03 nm. By subtracting the graphene skeleton thickness of 0.34 nm, yields an effective ion transport channel of 0.69 nm, approaching the critical size (~0.86 nm) for desolvating [Zn(H2O)n]2+. This upper limit proximity design can maximizes both ion flux and desolvation kinetics. To overcome the inherent ion flux attenuation in sub-nanochannels, an ultrathin sodium alginate (SA) suction layer was integrated beneath the K+-heGO layer. This zincophilic polymer layer functions as a chemical osmotic pump, which actively pulls Zn2+ through the 2D channels via strong adsorption. This synergistic design enables high Zn2+ transference number of 0.88. Consequently, Zn//Zn symmetric cells achieve an extended cycling lifespan over 4000 h at 1 mA cm−2, and maintain stability for 2000 h even at 20 mA cm−2. This work demonstrates that angstrom scale 2D confinement, synergized with a polymer assisted kinetic pump, provides an effective strategy for stabilizing zinc metal anodes.
| 源语言 | 英语 |
|---|---|
| 期刊论文编号 | 178020 |
| 期刊 | Chemical Engineering Journal |
| 卷 | 542 |
| DOI | |
| 出版状态 | 已出版 - 15 8月 2026 |
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