In the energy storage field, an electrode material must possess both good ionic and electronic conductivities to perform well, especially when high power is needed. In this context, the development of composite electrode materials combining an electrochemically active and good ionic conductor phase with an electronic conductor appears as a perfectly adapted approach to generate a synergetic effect and optimize the energy storage performance. In this work, three layered MnO(2) phases with various morphologies (veils, nanoplatelets and microplatelets) were combined with electronic conductor cobalt oxyhydroxides with different platelet sizes (â¼20 nm vs. 70 nm wide), to synthesize 6 different composites by exfoliation and restacking processes. The influence of precursors' morphology on the distribution of the Mn and Co objects within the composites was carefully investigated and correlated with the electrochemical performance of the final restacked material. Overall, the best performing restacked composite was obtained by combining MnO(2) possessing a veil morphology with the smallest cobalt oxyhydroxide nanoplatelets, leading to the most homogeneous distribution of the Mn and Co objects at the nanoscale. More generally, the aim of this work is to understand how the size and morphology of the precursor building blocks influence their distribution homogeneity within the final composite and to find the most compatible building blocks to reach a homogeneous distribution at the nanoscale.
Composite Mn-Co electrode materials for supercapacitors: why the precursor's morphology matters!
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作者:Invernizzi Ronan, Lemoine Alexia, Madec Lénaïc, Weill François, Dourges Marie-Anne, Tang Céline, Giaume Domitille, Baraille Isabelle, Taberna Pierre Louis, Flahaut Delphine, Olchowka Jacob, Guerlou-Demourgues Liliane
| 期刊: | Nanoscale Advances | 影响因子: | 4.600 |
| 时间: | 2022 | 起止号: | 2022 Oct 7; 4(23):5089-5101 |
| doi: | 10.1039/d2na00616b | ||
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