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首页> 外文期刊>Advanced Materials >Evaporation-Induced Vertical Alignment Enabling Directional Ion Transport in a 2D-Nanosheet-Based Battery Electrode
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Evaporation-Induced Vertical Alignment Enabling Directional Ion Transport in a 2D-Nanosheet-Based Battery Electrode

机译:蒸发诱导的垂直排列使2D纳米片基电池电极中的方向离子传输成为可能

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摘要

2D nanosheets have been widely explored as electrode materials owing to their extraordinarily high electrochemical activity and fast solid-state diffusion. However, the scalable electrode fabrication based on this type of material usually suffers from severe performance losses due to restricted ion-transport kinetics in a large thickness. Here, a novel strategy based on evaporation-induced assembly to enable directional ion transport via forming vertically aligned nanosheets is reported. The orientational ordering is achieved by a rapid evaporation of mixed solvents during the electrode fabrication process. Compared with conventional drop-cast electrodes, which exhibit a random arrangement of the nanosheets and obvious decrease of rate performance with increasing thickness, the electrode based on the vertically aligned nanosheets is able to retain the original high rate capability even at high mass loadings and electrode thickness. Combined electrochemical and structural characterization reveals the electrode composed of orientation-controlled nanosheets to possess lower charge-transfer resistances, leading to more complete phase transformation in the active material.
机译:二维纳米片由于其极高的电化学活性和快速的固态扩散而被广泛地用作电极材料。然而,基于这种类型的材料的可伸缩电极制造通常由于严重的较大厚度的离子传输动力学而遭受严重的性能损失。在此,报道了一种基于蒸发诱导组装的新颖策略,该策略通过形成垂直排列的纳米片来实现方向性离子传输。通过在电极制造过程中快速蒸发混合溶剂来实现定向排序。与常规的压铸电极相比,传统的压铸电极表现出纳米片的随机排列,并且随着厚度的增加,速率性能明显下降,基于垂直排列的纳米片的电极即使在高质量负载下也能够保持原始的高速率能力,并且电极厚度。电化学和结构特征的结合揭示了由取向控制的纳米片组成的电极具有较低的电荷转移电阻,从而导致活性材料中的相变更完全。

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