Inducing preferential intercalation of Zn 2+ in MnO 2 with abundant oxygen defects for high-performance aqueous zinc-ion batteries

Unfavorable proton intercalation leading to the generation and shedding of side reaction products is still a major challenge for the performance of manganese-based aqueous zinc-ion batteries (AZIBs). In this study, we present a porous oxygen-deficient MnO (O -MnO ) synthesized through -butyllithium...

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Veröffentlicht in:Nanoscale 2024-11, Vol.16 (46), p.21379-21387
Hauptverfasser: Dai, Simin, Zhuang, Xinyan, Jin, Hongrun, Yang, Ruixuan, Wang, Yan, Qi, Bei, Guo, Wenhuan, Xie, Kefeng, Hu, Zhimi, Liu, Meilin, Huang, Liang
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Sprache:eng
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Zusammenfassung:Unfavorable proton intercalation leading to the generation and shedding of side reaction products is still a major challenge for the performance of manganese-based aqueous zinc-ion batteries (AZIBs). In this study, we present a porous oxygen-deficient MnO (O -MnO ) synthesized through -butyllithium reduction treatment to induce preferential Zn intercalation, thereby effectively mitigating the adverse consequences of proton intercalation for high-performance AZIBs. Remarkably, O -MnO as a cathode material for AZIBs exhibits a specific capacity of 341 mA h g at 0.1 A g and 139 mA h g at 5 A g , and outstanding long-term stability with a capacity retention of 85.4% for over 1200 cycles at 1 A g . Moreover, the Zn/O -MnO pouch cell displays decent durability with a capacity retention of ∼90% for over 200 cycles at 1C. Our study opens new opportunities for the rational design of high-performance cathode materials by regulating the electronic structure and optimizing the energy storage process for rechargeable AZIBs.
ISSN:2040-3364
2040-3372
DOI:10.1039/d4nr03100h