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Carbon-Confined Sno(2)-Electrodeposited Porous Carbon Nanofiber Composite as High-Capacity Sodium-Ion Battery Anode Material

机译:碳约束的Sno(2)-电沉积多孔碳纳米纤维复合材料作为高容量钠离子电池负极材料

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摘要

Sodium resources are inexpensive and abundant, and hence, sodium ion batteries are promising alternative to lithium-ion batteries. However, lower energy density and poor cycling stability of current sodium-ion batteries prevent their practical implementation for future smart power grid and stationary storage applications. Tin oxides (SnO2) can be potentially used as a high-capacity anode material for future sodium-ion batteries, and they have the advantages of high sodium storage capacity, high abundance, and low toxicity. However, SnO2-based anodes still cannot be used in practical sodiumion batteries because they experience large volume changes during repetitive charge and discharge cycles. Such large volume changes lead to severe pulverization of the active material and loss of electrical contact between the SnO2 and carbon conductor, which in turn result in rapid capacity loss during cycling. Here, we introduce a new amorphous carbon-coated SnO2 porous carbon nanofiber (PCNF@SnO2@C) composite that not only has high sodium storage capability, but also maintains its structural integrity while ongoing repetitive cycles. Electrochemical results revealed that this SnO2-containing nanofiber composite anode had excellent electrochemical performance including high-capacity (374 mAh g(-1)), good capacity retention (82.7%), and large Coulombic efficiency (98.9% after 100th cycle).
机译:钠资源便宜且丰富,因此钠离子电池有望替代锂离子电池。然而,当前钠离子电池的较低的能量密度和较差的循环稳定性阻碍了它们在未来的智能电网和固定存储应用中的实际应用。氧化锡(SnO2)可以潜在地用作未来钠离子电池的高容量阳极材料,并且具有高钠存储容量,高丰度和低毒性的优点。但是,基于SnO2的阳极仍不能用于实际的钠离子电池,因为它们在重复的充电和放电循环中会经历较大的体积变化。如此大的体积变化会导致活性材料严重粉碎,并导致SnO2与碳导体之间的电接触损失,进而导致循环过程中容量快速下降。在这里,我们介绍一种新型的无定形碳包覆的SnO2多孔碳纳米纤维(PCNF @ SnO2 @ C)复合材料,该复合材料不仅具有较高的钠存储能力,而且在进行重复循环时仍保持其结构完整性。电化学结果表明,该含SnO2的纳米纤维复合阳极具有优异的电化学性能,包括高容量(374 mAh g(-1)),良好的容量保持率(82.7%)和大库仑效率(第100次循环后为98.9%)。

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