Suppressed Layered-to-Spinel Phase Transition in δ-MnO 2 via van der Waals Interaction for Highly Stable Zn/MnO 2 Batteries

Although birnessite-type manganese dioxide (δ-MnO ) with a large interlayer spacing (≈7 Å) is a promising cathode candidate for aqueous Zn/MnO batteries, the poor structural stability associated with Zn intercalation/deintercalation limits its further practical application. Herein, δ-MnO ultrathin n...

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Veröffentlicht in:Small methods 2022-12, Vol.6 (12), p.e2201142
Hauptverfasser: Qiu, Ce, Liu, Jia, Liu, Hanghui, Zhu, Xiaohui, Xue, Liang, Li, Shuang, Ni, Mingzhu, Zhao, Yang, Wang, Tong, Savilov, Serguei V, Aldoshin, Sergey M, Xia, Hui
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Sprache:eng
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Zusammenfassung:Although birnessite-type manganese dioxide (δ-MnO ) with a large interlayer spacing (≈7 Å) is a promising cathode candidate for aqueous Zn/MnO batteries, the poor structural stability associated with Zn intercalation/deintercalation limits its further practical application. Herein, δ-MnO ultrathin nanosheets are coupled with reduced graphene oxide (rGO) via van der Waals (vdW) self-assembly in a vacuum freeze-drying process. It is interesting to find that the presence of vdW interaction between δ-MnO and rGO can effectively suppress the layered-to-spinel phase transition in δ-MnO during cycling. As a result, the coupled δ-MnO /rGO hybrid cathode with a sandwich-like heterostructure exhibits remarkable cycle performance with 80.1% capacity retained after 3000 cycles at 2.0 A g . The first principle calculations demonstrate that the strong interfacial interaction between δ-MnO and rGO results in improved electron transfer and strengthened layered structure for δ-MnO . This work establishes a viable strategy to mitigate the adverse layered-to-spinel phase transition in layered manganese oxide in aqueous energy storage systems.
ISSN:2366-9608
2366-9608
DOI:10.1002/smtd.202201142