Utilizing MOF precursors toward one-step, calcination-free synthesis of MnO 2 superstructures for superior lithium storage

Rationally controlled synthesis of transition metal oxide materials for structure-related applications in diverse areas at room temperature and ambient atmosphere remains a challenge. In this article, we propose a facile one-step calcination-free approach for the rational and green synthesis of 3D h...

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Veröffentlicht in:Sustainable energy & fuels 2022-12, Vol.7 (1), p.181-189
Hauptverfasser: Fan, Yang, Luo, Deli, Wu, Yan, Peng, Tianlang, Qi, Qi, Han, Xubing, Zhou, Jinxin, Wang, Yanling, Lin, Bao, Xiong, Qinqin, Yuan, Yongjun, Qin, Haiying, Hu, Xiaoshi
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Sprache:eng
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Zusammenfassung:Rationally controlled synthesis of transition metal oxide materials for structure-related applications in diverse areas at room temperature and ambient atmosphere remains a challenge. In this article, we propose a facile one-step calcination-free approach for the rational and green synthesis of 3D hierarchical polyhedron-shaped superstructures of manganese dioxide (MnO 2 ) through the simultaneous ion exchange and oxidation of a preformed Mn-based M 2 (dobdc) (dobdc = 2,5-dihydroxy-1,4-benzenedicarboxylate) MOF (CPO-27-Mn) template with an adequate open aqueous alkaline solution of a moderate concentration at room temperature, as well as their application in rechargeable lithium cells. Concretely, we proposed that during the solution-phase process, upon exchange of the anionic dobdc 4− ligand with OH − , the resultant intermediate manganese hydroxide reacts with dissolved O 2 in solution to form MnO 2 . Electrochemical evaluation showed that the as-synthesized hierarchical MnO 2 superstructures exhibited excellent electrochemical performance, including high reversible specific reversibility (866.4 mA h g −1 ), superior rate capability and long-term cycling stability (797.9 mA h g −1 after 300 cycles at 1000 mA g −1 ) when serving as anodes. This unique novel MOF-derived protocol provides an alternative perspective on the designed fabrication of advanced transition metal oxide functional nanomaterials.
ISSN:2398-4902
2398-4902
DOI:10.1039/D2SE01224C