An Air-Operated, High-Performance Fe-Ion Secondary Battery Using Acidic Electrolyte.

Chen, Zhaoyang; Bian, Shuyang; Chen, Wenshu; Ye, Fei; Cheng, Chao; Shu, Shijia; Gu, Qinfen; Dong, Hongliang et al. · Adv Mater · 2025

basic_science · Level V

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Abstract

Fe<sup>2+</sup> have emerged as the ideal charge carriers to construct aqueous batteries as one of the most competitive candidates for next-generation low-cost and safe energy storage. Unfortunately, the fast oxidation of Fe<sup>2+</sup> into Fe<sup>3+</sup> at ambient conditions inevitably requires the assembly process of the cells in an oxygen-free glovebox. Up to date, direct air assembly of aqueous Fe-ion battery remains very desirable yet highly challenge. Here oxidation of Fe<sup>2+</sup> is found at ambient condition and is completely inhibited in an acidic electrolyte. A proton/O<sub>2</sub> competitive mechanism in the acidic electrolyte is revealed with reduced coordinated O<sub>2</sub> in the Fe<sup>2+</sup> solvated shell for this unexpected finding. Based on this surprise, for the first time, air-operated assembly of iron-ion batteries is realized. Meanwhile, it is found that the acidic environment induces the in situ growth of active α-FeOOH derivate on the VOPO<sub>4</sub>·2H<sub>2</sub>O surface. Strikingly, the acidic electrolyte enables an air-operated Fe-ion battery with a high specific capacity of 192 mAh g<sup>-1</sup> and ultrastable cycling stability over 1300 cycles at 0.1 A g<sup>-1</sup>. This work makes a break through on the air-assembly of Fe-ion battery without oxygen-free glovebox. It also reveals previously unknown proton/O<sub>2</sub> competitive mechanisms in the Fe<sup>2+</sup> solvated shell and cathode surface chemistry for aqueous Fe<sup>2+</sup> storage.