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首页> 外文期刊>Advanced Functional Materials >Overcoming the Unfavorable Kinetics of Na_3V_2(PO_4)_2F_3//SnP_x Full-Cell Sodium-Ion Batteries for High Specific Energy and Energy Efficiency
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Overcoming the Unfavorable Kinetics of Na_3V_2(PO_4)_2F_3//SnP_x Full-Cell Sodium-Ion Batteries for High Specific Energy and Energy Efficiency

机译:克服NA_3V_2(PO_4)_2F_3 // SNP_X全电池钠离子电池的不利动力学,以实现高的能量和能效

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摘要

In this work, a full-cell sodium-ion battery (SIB) with a high specific energy approaching 300 Wh kg(-1) is realized using a sodium vanadium fluorophosphate (Na3V2(PO4)(2)F-3, NVPF) cathode and a tin phosphide (SnPx) anode, despite both electrode materials having greatly unbalanced specific capacities. The use of a cathode employing an areal loading more than eight times larger than that of the anode can be achieved by designing a nanostructured nanosized NVPF (n-NVPF) cathode with well-defined particle size, porosity, and conductivity. Furthermore, the high rate capability and high potential window of the full-cell can be obtained by tuning the Sn/P ratio (4/3, 1/1, and 1/2) and the nanostructure of an SnPx/carbon composite anode. As a result, the full-cell SIBs employing the nanostructured n-NVPF cathode and the SnPx/carbon composite anode (Sn/P = 1/1) exhibit outstanding specific energy (approximate to 280 Wh kg((cathode+anode))(-1)) and energy efficiency (approximate to 78%); furthermore, the results are comparable to those of state-of-the-art lithium-ion batteries.
机译:在这项工作中,使用氟磷酸钠(Na 3V 2(PO4)(2)F-3,NVPF)阴极来实现具有高特异性能量接近300WH kg(-1)的全细胞钠离子电池(SIB)和锡磷(SnPX)阳极,尽管两个电极材料具有极大的特定能力。通过设计具有良好定义的粒度,孔隙率和导电性的纳米结构纳米型NVPF(N-NVPF)阴极,可以使用采用小于阳极的体积负荷的阴极超过阳极的八倍。此外,通过调节SN / P比(4/3,1 / 1和1/2)和SNPX /碳复合阳极的纳米结构,可以获得全细胞的高速率能力和高潜在窗口。结果,使用纳米结构N-NVPF阴极和SNPX /碳复合阳极(SN / P = 1/1)的全细胞SIB表现出出色的特定能量(近似为280WH kg((阴极+阳极))( -1))和能效(近似为78%);此外,结果与最先进的锂离子电池相当。

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