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Tin phosphide-based anodes for sodium-ion batteries: synthesis via solvothermal transformation of Sn metal and phase-dependent Na storage performance

机译:用于钠离子电池的磷化锡基阳极:通过锡金属的溶剂热转化和相变储钠性能进行合成

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摘要

There is a great deal of current interest in the development of rechargeable sodium (Na)-ion batteries (SIBs) for low-cost, large-scale stationary energy storage systems. For the commercial success of this technology, significant progress should be made in developing robust anode (negative electrode) materials with high capacity and long cycle life. Sn-P compounds are considered promising anode materials that have considerable potential to meet the required performance of SIBs, and they have been typically prepared by high-energy mechanical milling. Here, we report Sn-P-based anodes synthesised through solvothermal transformation of Sn metal and their electrochemical Na storage properties. The temperature and time period used for solvothermal treatment play a crucial role in determining the phase, microstructure, and composition of the Sn-P compound and thus its electrochemical performance. The Sn-P compound prepared under an optimised solvothermal condition shows excellent electrochemical performance as an SIB anode, as evidenced by a high reversible capacity of ~560 mAh g−1 at a current density of 100 mA g−1 and cycling stability for 100 cycles. The solvothermal route provides an effective approach to synthesising Sn-P anodes with controlled phases and compositions, thus tailoring their Na storage behaviour.
机译:当前,用于低成本,大规模固定式能量存储系统的可充电钠(Na)离子电池(SIB)的开发引起了人们的极大兴趣。为了使这项技术取得商业上的成功,在开发具有高容量和长循环寿命的坚固阳极(负极)材料方面应取得重大进展。 Sn-P化合物被认为是很有前途的阳极材料,具有满足SIB所需性能的巨大潜力,通常通过高能机械研磨制备。在这里,我们报告通过锡金属的溶剂热转化合成的基于Sn-P的阳极及其电化学Na储存特性。溶剂热处理所用的温度和时间在决定Sn-P化合物的相,微结构和组成及其电化学性能方面起着至关重要的作用。在最佳溶剂热条件下制备的Sn-P化合物作为SIB阳极表现出优异的电化学性能,这在电流密度为100 mA g 560 mAh g -1 时具有很高的可逆容量。 sup> -1 和100次循环稳定性。溶剂热途径为合成具有受控相和组成的Sn-P阳极提供了一种有效的方法,因此可以调整其Na储存行为。

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