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Anion Engineering Toward Regulated Solvation Structure and Enhanced Performance in Hydrated Eutectic Electrolytes for Aluminum-Ion Batteries
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DOI:10.1002/chem.71060.png)
Abstract
En 中文
The practical deployment of rechargeable aluminum-ion batteries (AIBs) is hindered by the absence of electrolytes that concurrently offer low cost, efficient ion transport, and stable interfacial electrochemistry. While hydrated deep eutectic electrolytes (HEEs) present a promising avenue, their advancement has been limited by high viscosity and poorly controlled interfacial reactions. This work establishing anion engineering, rather than solely focusing on ligand modulation, as a critical yet previously underappreciated design strategy. We systematically elucidate how the identity of the anion governs the coordination architecture within an ethylene glycol (EG)-based HEE. Crucially, the NO3 - anion induces the formation of a homogeneous, inner-sphere Al3+ solvation complex, which simultaneously reduces the dynamic viscosity, improves interfacial wettability, and elevates the cathodic stability limit. This tailored solvation structure lowers the desolvation energy barrier. As a result, the NO3 --HEE enables exceptional aluminum anode reversibility, evidenced by a high exchange current density and stable, dendrite-free plating/stripping over 400 h. Full cells coupled with a CuHCF cathode deliver a specific capacity of similar to 123 mAh & centerdot;g-1 and demonstrate outstanding capacity retention over 500 cycles. This study provides a foundational anion-centric design principle for next-generation, high-performance eutectic electrolytes.
Keywords:
aluminum ion battery
anion engineering
hydrated eutectic electrolyte
solvation structure
Journal
C
IF:
3.7
Papers:
3.9W
Citations:
9.6W
