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From Charge Storage Mechanism to Performance: A Roadmap toward High Specific Energy Sodium-Ion Batteries through Carbon Anode Optimization

机译:从电荷存储机制到性能:通过碳阳极优化实现高比能钠离子电池的路线图

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While sodium-ion batteries (SIBs) represent a low-cost substitute for Li-ion batteries (LIBs), there are still several key issues that need to be addressed before SIBs become market-ready. Among these, one of the most challenging is the negligible sodium uptake into graphite, which is the keystone of the present LIB technology. Although hard carbon has long been established as one of the best substitutes, its performance remains below that of graphite in LIBs and its sodium storage mechanism is still under debate. Many other carbons have been recently studied, some of which have presented capacities far beyond that of graphite. However, these also tend to exhibit larger voltage and high first cycle loss, leading to limited benefits in terms of full cell specific energy. Overcoming this concerning tradeoff necessitates a deep understanding of the charge storage mechanisms and the correlation between structure, microstructure, and performance. This review aims to address this by drawing a roadmap of the emerging routes to optimization of carbon materials for SIB anodes on the basis of a critical survey of the reported electrochemical performances and charge storage mechanisms.
机译:尽管钠离子电池(SIB)可以替代锂离子电池(LIB)的低成本产品,但在SIB进入市场之前,仍然需要解决几个关键问题。其中,最具挑战性的问题之一是石墨对钠的吸收微不足道,这是当前LIB技术的重点。尽管长期以来,硬碳已被确立为最佳替代品之一,但其性能仍低于LIB中石墨的性能,其钠存储机制仍在争论中。最近研究了许多其他碳,其中一些碳的容量远远超过了石墨。然而,这些也倾向于表现出较大的电压和较高的第一周期损耗,从而导致在全电池比能量方面的益处有限。克服有关折衷的问题,需要对电荷存储机制以及结构,微结构和性能之间的相关性有深入的了解。这篇综述旨在通过对所报告的电化学性能和电荷存储机理的重要调查,为SIB阳极绘制碳材料优化的新兴路线图来解决这一问题。

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