We report a coupled microwave–hydrothermal process to crystallize polymorphs of MnO 2 such as α-, β-, and γ-phase samples with plate-, rod-, and wirelike shapes, by a controllable redox reaction in MnCl 2 –KMnO 4 aqueous solution system. MnCl 2 –KMnO 4 redox reaction system was for the first time applied to MnO 2 samples under the coupled microwave–hydrothermal conditions, which shows clear advantages such as shorter reaction time, well-crystallized polymorphic MnO 2, and good electrochemical performances as electrode materials for lithium ion batteries. For comparison, we also did separate reactions with hydrothermal only and microwave only in our designed MnCl 2 –KMnO 4 aqueous system. The present results indicate that MnCl 2 –KMnO 4 reaction system can selectively lead to α-, β-, and γ-phase MnO 2, and the as-crystallized MnO 2 samples can show interesting electrochemical performances for both lithium-ion batteries and supercapacitors. Electrochemical measurements show that the as-crystallized MnO 2 supercapacitors have Faradaic reactivity sequence α- > γ- > β-MnO 2 upon their tunnel structures, the intercalation–deintercalation reactivity of these MnO 2 cathodes follows the order γ- > α- > β-phase, and the conversion reactivity of these MnO 2 anodes follows the order γ- > α- > β-phase. MnCl 2 –KMnO 4 reaction system can also lead to the mixed-phase MnO 2 (β- and γ-MnO 2 ), which can provide better anode performances for lithium-ion batteries. The current work deepens the fundamental understanding of several aspects of physical chemistry, for example, the chemical reaction controllable synthesis, crystal structure selection, electrochemical property improvement, and electrochemical reactivity, as well as their correlations.
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Chen et al. (2013) studied this question.
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