Abstract
Aqueous Zn-ion battery development is challenged by H2O-induced side reactions and dendrite growth. Interface protective engineering and electrolyte additive including high-concentration salts or organic co-solvents can reduce H2O molecules, but often at the expense of cost, ionic conductivity, and safety. An approach that mitigates H2O damage without compromising the merits of aqueous electrolytes is highly desired. Herein, we propose an intrinsic tuning strategy to strengthen the intramolecular O–H bond and elongate the Zn2+–O (H2O) bond length by utilizing electronic and steric hindrance effects, thereby inherently reducing the H2O reactivity and constructing a relaxed solvation shell. Using ascorbic acid (AA) as a proof-of-concept additive, this bond-length engineering is verified to facilitate Zn2+ desolvation and raise the H2O reduction barrier, leading to even Zn electrodeposition together with inhibition of detrimental side reactions. Therefore, the Zn anode achieves stable cycling for over 380 h under ultrahigh depth of discharge (DOD) of 86.1% together with high current density and areal capacity (100 mA/mAh cm−2). Full Zn/NaV3O8·1.5H2O cell also presents remarkably enhanced cycling stability, demonstrating the practicality of this approach for high-performance AZIB.

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