Probing the morphology dependence, size preference and electron/ion conductance of manganese-based lithium transition-metal phosphate as cathode materials for high-performance lithium-ion battery

As a promising cathode for next-generation lithium-ion batteries, the morphology dependence, size preference and electron/ion conductance of manganese-based lithium transition-metal phosphate (MLTP) compounds were comprehensively analyzed via synergistic strategies including the surfactant-assisted...

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Veröffentlicht in:Journal of alloys and compounds 2021-01, Vol.850, p.156773, Article 156773
Hauptverfasser: Wang, Yan, Yu, Faquan
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Sprache:eng
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Zusammenfassung:As a promising cathode for next-generation lithium-ion batteries, the morphology dependence, size preference and electron/ion conductance of manganese-based lithium transition-metal phosphate (MLTP) compounds were comprehensively analyzed via synergistic strategies including the surfactant-assisted solvothermal method and surface modification. Variations of morphology, (particle, crystallite and lattice) size and electron/ion conductivity selectively modulated their electrochemical properties. For MLTP cathode materials, the as-prepared small-sized particle with large crystallite and large lattice greatly optimized the cycling stability, reversible capacity and polarization performance, whereas irregular particle morphology mainly inhibited the specific capacity. Meanwhile, the RGO-decorated MLTP-EG12/C cathode material could further unlock the high-rate capability and thermal stability without polarization differences. These regulation mechanisms of morphology, size and conductivity described in this work can be helpful in the development of high-performance cathode materials for lithium-ion batteries. [Display omitted] •Small MLTP-EG12 particle with big crystallite and lattice is prepared by one-pot.•Cycling stability and polarization effect depend highly on its size preferences.•Regular ultra-thin morphology is helpful to increase its specific capacity.•RGO decoration optimize its high-rate capability and thermal stability.
ISSN:0925-8388
1873-4669
DOI:10.1016/j.jallcom.2020.156773