Fe-Ion Bolted VOPO<sub>4</sub> ∙2H<sub>2</sub> O as an Aqueous Fe-Ion Battery Electrode.
basic_science · Level V
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- Record sourced from PubMed, PMID 34623704.
- Also identified by DOI 10.1002/adma.202105234.
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Abstract
Iron ion batteries using Fe<sup>2+</sup> as a charge carrier have yet to be widely explored, and they lack high-performing Fe<sup>2+</sup> hosting cathode materials to couple with the iron metal anode. Here, it is demonstrated that VOPO<sub>4</sub> ∙2H<sub>2</sub> O can reversibly host Fe<sup>2+</sup> with a high specific capacity of 100 mAh g<sup>-1</sup> and stable cycling performance, where 68% of the initial capacity is retained over 800 cycles. In sharp contrast, VOPO<sub>4</sub> ∙2H<sub>2</sub> O's capacity of hosting Zn<sup>2+</sup> fades precipitously over tens of cycles. VOPO<sub>4</sub> ∙2H<sub>2</sub> O stores Fe<sup>2+</sup> with a unique mechanism, where upon contacting the electrolyte by the VOPO<sub>4</sub> ∙2H<sub>2</sub> O electrode, Fe<sup>2+</sup> ions from the electrolyte get oxidized to Fe<sup>3+</sup> ions that are inserted and trapped in the VOPO<sub>4</sub> ∙2H<sub>2</sub> O structure in an electroless redox reaction. The trapped Fe<sup>3+</sup> ions, thus, bolt the layered structure of VOPO<sub>4</sub> ∙2H<sub>2</sub> O, which prevents it from dissolution into the electrolyte during (de)insertion of Fe<sup>2+</sup> . The findings offer a new strategy to use a redox-active ion charge carrier to stabilize the layered electrode materials.