首页> 外文会议>Advanced automotive battery conference;Lithium battery chemistry symposium >Sodium-Ion Storage in Electrochemically Enhanced Hard Carbons
【24h】

Sodium-Ion Storage in Electrochemically Enhanced Hard Carbons

机译:电化学增强硬碳中的钠离子存储

获取原文

摘要

The performance of batteries is critically dependent on the electrode, thus the development of electrode materials is at the heart of advancement for Na-ion batteries (NIBs). In Li-ion batteries (LIBs), carbonaceous materials have played a pivotal role as an anode material. The low cost, abundance and availability of large-scale processing systems for carbon materials has allowed LIBs to become commercially successful, and, accordingly, the nature of lithium-ion storage in various types of carbonaceous material is relatively well known. However, despite the similar practical advantages of NIBs, the nature of sodium-ion storage in carbonaceous materials remains relatively poorly understood. Moreover, while chemical differences between lithium and sodium result in fundamentally different electrochemical responses in NIBs, and while different carbon-based anodes show distinct electrochemical properties with sodium, the correlation between carbon local structure and sodium ion storage has not been investigated extensively to date. Herein, we demonstrate the direct interplay between carbon local orderings and their diverse electrochemical properties in NIBs using morphologically identical carbon platform with different carbon local structures. It is shown that sodium ion storage behaviors vary among surface-driven physisorption and chemisorption, diffusion-controlled insertion and nanoclustering of the metallic state, and the expression of these mechanisms is highly dependent on the local carbon structure. In particular, the nanoclustering of sodium metal within the carbon material is directly visualized, which is the first direct observation of metallic sodium storage, to the best of our knowledge, in carbon-based electrodes. These three different mechanisms result in distinct working voltages, specific capacities and power capabilities. The straightforward dependency of electrochemical properties, such as potential and capacity, on the carbon structure found in this work provides guidelines for tailoring carbon structures to tune the electrochemical performance of carbonaceous materials for NIBs. Thus, the findings in this work not only provide a better understanding of sodium ion storage behavior in carbonaceous materials but also offer a design strategy for electrode optimization in various sodium-based electrochemical devices.
机译:电池的性能尺寸依赖于电极,因此电极材料的发展是Na离子电池(尖端)的推进的核心。在锂离子电池(LIBS)中,碳质材料发挥了衔接作用作为阳极材料。对于碳材料的大规模加工系统的低成本,丰度和可用性使Libs能够成为商业上成功的,因此,各种类型的碳质材料中锂离子储存的性质是相对众所周知的。然而,尽管尖端具有类似的实际优点,但碳质材料中钠离子储存的性质仍然相对较差。此外,虽然锂和钠之间的化学差异导致尖端中的基本不同的电化学反应,而不同的碳阳极显示出与钠的明显电化学性能,但迄今为止迄今为止迄今为止还没有进行碳局部结构与钠离子储存之间的相关性。在此,我们展示了使用具有不同碳局部结构的形态相同的碳平台在碳局部排序和它们在尖端中不同电化学性质之间的直接相互作用。结果表明,钠离子储存行为在表面驱动的物理吸附,扩散控制的插入和金属状态的纳米聚集中变化,并且这些机制的表达高度依赖于局部碳结构。特别地,碳材料内的钠金属的纳米聚集性直接可视化,这是在碳基电极中最佳地将金属钠储存的首次直接观察。这三种不同的机制导致不同的工作电压,特定容量和功率能力。电化学性质的直接依赖性,例如潜在和容量,在本工作中发现的碳结构提供了用于定制碳结构的准则,以调整碳质材料的纤维素的电化学性能。因此,在这项工作中的发现不仅可以更好地了解碳质材料中的钠离子储存行为,而且还提供各种钠基电化学器件中电极优化的设计策略。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号