首页> 外文期刊>Scientific reports. >Hierarchical Porous LiNi1/3Co1/3Mn1/3O2 Nano-/Micro Spherical Cathode Material: Minimized Cation Mixing and Improved Li+ Mobility for Enhanced Electrochemical Performance
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Hierarchical Porous LiNi1/3Co1/3Mn1/3O2 Nano-/Micro Spherical Cathode Material: Minimized Cation Mixing and Improved Li+ Mobility for Enhanced Electrochemical Performance

机译:分层多孔LINI1 / 3CO1 / 3MN1 / 3O2纳米/微球形阴极材料:最小化阳离子混合和改进的Li +流动性,提高电化学性能

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Although being considered as one of the most promising cathode materials for Lithium-ion batteries (LIBs), LiNi1/3Co1/3Mn1/3O2 (NCM) is currently limited by its poor rate performance and cycle stability resulting from the thermodynamically favorable Li(+)/Ni(2+) cation mixing which depresses the Li(+) mobility. In this study, we developed a two-step method using fluffy MnO2 as template to prepare hierarchical porous nano-/microsphere NCM (PNM-NCM). Specifically, PNM-NCM microspheres achieves a high reversible specific capacity of 207.7?mAh g(-1) at 0.1?C with excellent rate capability (163.6 and 148.9?mAh g(-1) at 1?C and 2?C), and the reversible capacity retention can be well-maintained as high as 90.3% after 50 cycles. This excellent electrochemical performance is attributed to unique hierarchical porous nano-/microsphere structure which can increase the contact area with electrolyte, shorten Li(+) diffusion path and thus improve the Li(+) mobility. Moreover, as revealed by XRD Rietveld refinement analysis, a negligible cation mixing (1.9%) and high crystallinity with a well-formed layered structure also contribute to the enhanced C-rates performance and cycle stability. On the basis of our study, an effective strategy can be established to reveal the fundamental relationship between the structure/chemistry of these materials and their properties.
机译:虽然被认为是锂离子电池(LIBS)最有前途的阴极材料之一,但目前LINI1 / 3CO1 / 3MN1 / 3O2(NCM)受到其差的性能和循环稳定性的限制,该热力学良好的LI(+) / Ni(2+)阳离子混合,抑制Li(+)迁移率。在这项研究中,我们开发了一种使用蓬松MnO2作为模板的两步法,以制备分层多孔纳米/微球NCM(PNM-NCM)。具体地,PNM-NCM微球在0.1℃下以0.1℃的高可逆特定容量为207.7Ω·mAhg(-1),具有优异的速率能力(163.6和148.9〜mah g(-1),1?c和2?c),并且在50次循环后,可逆容量保留可以保持高达90.3%。这种优异的电化学性能归因于独特的分层多孔纳米/微球结构,其可以增加具有电解质的接触面积,缩短Li(+)扩散路径,从而改善Li(+)迁移率。此外,正如XRD Rietveld改进分析所揭示的那样,可忽略不计的阳离子混合(1.9%)和具有良好形成的层状结构的高结晶度也有助于增强的C型性能和循环稳定性。在我们的研究的基础上,可以建立有效的策略,以揭示这些材料的结构/化学与其性质之间的基本关系。

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