Abstract
Aqueous aluminum-ion batteries (AAIBs) are attractive for safe and low-cost energy storage but are fundamentally constrained by the thermodynamic instability of metallic Al in aqueous electrolytes, which induces hydrogen evolution and interfacial corrosion, particularly at sub-zero temperatures. We report a cooperative anode-electrolyte interface (AEI) engineering strategy that simultaneously regulates Al3+ solvation chemistry and anode surface crystallography to stabilize Al anodes in aqueous electrolytes. Introducing panthenol into a conventional Al(ClO4)3 electrolyte results in the formation of a hydrated eutectic system that reconstructs the hydrogen-bond network and tailors Al3+ solvation structures. This electrolyte system is inherently nonflammable and exhibits an expanded electrochemical stability window, along with an ionic conductivity of 2.17 mS cm−1 at −30°C. Meanwhile, trace alloying–directional etching (TADE) generates a nanoporous Al anode enriched with Al(200) facets that suppress proton adsorption and lower the Al nucleation barrier. The regulated solvation sheath induces an anion-rich organic interphase, enabling stable cycling for 300 h at 30°C and −10°C, and operation at −25°C. This work establishes AEI engineering as a general strategy for wide-temperature AAIBs.
| Original language | English |
|---|---|
| Journal | Advanced Functional Materials |
| DOIs | |
| Publication status | Accepted/In press - 2026 |
Keywords
- anode-electrolyte interface
- aqueous aluminum-ion batteries
- electrochemical impedance spectroscopy
- hydrated eutectic electrolytes
- solvation structure
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