The Construction of Binary Phase Electrolyte Interface for Highly Stable Zinc Anodes.
basic_science · Level V
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- Record sourced from PubMed, PMID 37555530.
- Also identified by DOI 10.1002/adma.202304426.
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Abstract
Metal zinc is a promising anode candidate of aqueous zinc-ion batteries due to high theoretical capacity, low cost, and high safety. However, it often suffers from hydrogen evolution reaction (HER), dendrite growth, and formation of by-products. Herein, a triethyl phosphate (TEP)/H<sub>2</sub> O binary phase electrolyte (BPE) interface is developed by introducing TEP-based electrolyte-wetted hydrophobic polypropylene (PP) separator onto the Zn anode surface. The equilibrium of the BPE interface depends on the comparable surface tensions of H<sub>2</sub> O-based and TEP-based electrolytes on hydrophobic PP separator surfaces. The BPE interface induces Zn<sup>2+</sup> solvation structure conversion from [Zn(H<sub>2</sub> O)<sub>x</sub> ]<sup>2+</sup> to [Zn(TEP)<sub>n</sub> (H<sub>2</sub> O)<sub>y</sub> ]<sup>2+</sup> , where most solvated H<sub>2</sub> O molecules are removed. In [Zn(TEP)<sub>n</sub> (H<sub>2</sub> O)<sub>y</sub> ]<sup>2+</sup> , the residual H<sub>2</sub> O molecules can be further constrained by the formation of H bonds between TEP and H<sub>2</sub> O molecules. Consequently, the ionization of solvated H<sub>2</sub> O molecules is effectively suppressed, and HER and by-products are effectively restricted on Zn anode surfaces in BPE. As a result, Zn anodes exhibit a high Coulombic efficiency of 99.12% and superior cycling performance of 6000 h, which is much higher than the case in single-phase aqueous electrolytes. To illustrate the feasibility of BPE in full cells, the Zn/Al<sub>x</sub> V<sub>2</sub> O<sub>5</sub> batteries are assembled based on the BPE and exhibited enhanced cycling performance.