Combining Structural Modification and Electrolyte Regulation to Enable Long-Term Cyclic Stability of MoO @TiO as Cathode for Aqueous Zn-Ion Batteries.

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School of Materials Science and Engineering, and Guangdong Provincial Key Laboratory of Advanced Energy Storage Materials, South China University of Technology, Guangzhou, 510640, P. R. China.

Published: October 2023

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Orthorhombic MoO (α-MoO ) with multivalent redox couple of Mo /Mo and layered structure is a promising cathode for rechargeable aqueous Zn-ion batteries (AZIBs). However, pure α-MoO suffers rapid capacity decay due to the serious dissolution and structural collapse. Meanwhile, the growth of byproduct and dendrite on the anode also lead to the deterioration of cyclic stability. This article establishes the mechanism of proton intercalation into MoO and proposes a joint strategy combining structural modification with electrolyte regulation to enhance the cyclic stability of MoO without sacrificing the capacity. In ZnSO electrolyte with Al (SO ) additive, TiO coated oxygen-deficient α-MoO (MoO @TiO ) delivers a reversible capacity of 93.2 mA h g at 30 A g after 5000 cycles. The TiO coating together with the oxygen deficiency avoids structural damage while facilitating proton diffusion. Besides, the additive of Al (SO ) , acting as a pump, continuously supplements protons through dynamic hydrolysis, avoiding the formation of Zn SO (OH) ·xH O byproducts at both MoO @TiO and Zn anode. In addition, Al (SO ) additive facilitates uniform deposition of Zn owing to the tip-blocking effect of Al ion. The study demonstrates that the joint strategy is beneficial for both cathode and anode, which may shed some light on the development of AZIBs.

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http://dx.doi.org/10.1002/smll.202303286DOI Listing

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