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Na-Ion Batteries for Large Scale Applications: A Review on Anode Materials and Solid Electrolyte Interphase Formation

机译:钠离子电池的大规模应用:阳极材料和固体电解质界面形成的综述

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摘要

The urgent need for optimizing the available energy through smart grids and efficient large-scale energy storage systems is pushing the construction and deployment of Li-ion batteries in the MW range which, in the long term, are expected to hit the GW dimension while demanding over 1000 ton of positive active material per system. This amount of Li-based material is equivalent to almost 1% of current Li consumption and can strongly influence the evolution of the lithium supply and cost. Given this uncertainty, it becomes mandatory to develop an energy storage technology that depends on almost infinite and widespread resources: Na-ion batteries are the best technology for large-scale applications. With small working cells in the market that cannot compete in cost ($/Wh) with commercial Li-ion batteries, the consolidation of Na-ion batteries mainly depends on increasing their energy density and stability, the negative electrodes being at the heart of these two requirements. Promising Na-based negative electrodes for large-scale battery applications are reviewed, along with the study of the solid electrolyte interphase formed in the anode surface, which is at the origin of most of the stability problems.
机译:迫切需要通过智能电网和高效的大型储能系统来优化可用能源,这推动了锂离子电池的建造和部署,从长远来看,预计将达到GW规模,同时要求每个系统超过1000吨的正极活性物质。这种基于锂的材料的量几乎等于当前锂消耗量的1%,并且可以极大地影响锂供应和成本的演变。考虑到这种不确定性,必须开发一种依赖几乎无限和广泛资源的储能技术:钠离子电池是大规模应用的最佳技术。由于市场上的小型工作电池无法在成本($ / Wh)上与商用锂离子电池竞争,因此钠离子电池的整合主要取决于提高其能量密度和稳定性,负极是这些电池的核心两个要求。综述了用于大型电池应用的有前景的基于Na的负极,以及对在阳极表面形成的固态电解质界面的研究,这是大多数稳定性问题的根源。

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