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A recrystallized organic cathode with high electrical conductivity for fast sodium-ion storage

机译:一种具有高导电性的重结晶有机阴极,用于快速储存钠离子

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Organic electrode materials have attracted much attention in the field of batteries owing to their low-cost, structure diversity and environmental friendliness. However, most of them suffer from low electrical conductivity, sluggish reaction kinetics, and poor cycle life. In this work, we develop a strategy of fabricating a naphthalene diimide-based sodium salt cathode with high electrical conductivity for facilitating the charge transfer and accelerating the reaction kinetics by the dissolution/reprecipitation process. The recrystallization process of naphthalene molecules in water enhances intermolecular π–π interactions, leading to the formation of a uniform rod-like morphology and significantly increasing its electrical conductivity, which allows fast charge transfer kinetics and high ionic conductivity of organic electrodes in sodium-ion batteries. Therefore, the recrystallized organic cathode (NDI-ONa-r) exhibits a high specific capacity of 145 mA h g−1 at 0.1 A g−1, excellent fast charge/discharge performance (70 mA h g−1 at 20 A g−1, about 127C), and an ultra-long cycle life of 30 000 cycles at 10 A g−1 with a capacity retention of 87. As a result, the NDI-ONa-r//HC full cells also show a high specific capacity of 140 mA h g−1 at 0.1 A g−1 and good rate performance. Our work presents a potential way to fundamentally facilitate fast electron transport and ion diffusion in organic electrode materials, which would motivate their application in high-performance sodium-ion batteries.
机译:有机电极材料因其成本低、结构多样、环境友好等优点在电池领域备受关注。然而,它们中的大多数都存在导电性低、反应动力学缓慢和循环寿命差的问题。在这项工作中,我们开发了一种制备具有高导电性的萘二酰亚胺基钠盐阴极的策略,以促进电荷转移并通过溶解/再沉淀过程加速反应动力学。萘分子在水中的再结晶过程增强了分子间π-π相互作用,导致形成均匀的棒状形态并显着增加其导电性,从而允许钠离子电池中有机电极的快速电荷转移动力学和高离子电导率。因此,再结晶有机阴极 (NDI-ONa-r) 在 0.1 A g-1 下表现出 145 mA h g-1 的高比容量,优异的快速充电/放电性能(在 20 A g-1 下为 70 mA h g-1,约 127C),在 10 A g-1 下具有 30 000 次循环的超长循环寿命,容量保持率为 87%。因此,NDI-ONa-r//HC 全电池在 0.1 A g-1 下也显示出 140 mA h g-1 的高比容量和良好的倍率性能。我们的工作提出了一种从根本上促进有机电极材料中快速电子传输和离子扩散的潜在方法,这将推动它们在高性能钠离子电池中的应用。

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