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首页> 外文期刊>Nanoscale >Structural design enabled a hypotoxic Na3.36FeV(PO4)3 cathode with ultra-fast and ultra-long sodium storage
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Structural design enabled a hypotoxic Na3.36FeV(PO4)3 cathode with ultra-fast and ultra-long sodium storage

机译:Structural design enabled a hypotoxic Na3.36FeV(PO4)3 cathode with ultra-fast and ultra-long sodium storage

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摘要

Among various cathode materials for sodium-ion batteries, Na3V2(PO4)3 has attracted much attention due to its outstanding electrochemical performance. However, the toxicity and expensive price of vanadium limit its practical application. Therefore, the substitution of vanadium with nontoxic and inexpensive transition metal elements is significant. We select the earth-abundant iron element to partially replace the vanadium element, and successfully synthesize Na3.36FeV(PO4)3 with a Na superionic conductor structure. Furthermore, a Na3.36FeV(PO4)3 cathode with an optimal carbon content can deliver an initial capacity of 97.6 mA h g−1 at 0.5C with a high capacity retention of 96.4% after 200 cycles. In addition, it also delivers an initial capacity of 90.4 mA h g−1 at 10C, and a capacity retention of 80% can be obtained after 5000 cycles. We also found that the lack of sodium in the material can be compensated by an electrochemical reaction. Furthermore, the in situ X-ray diffraction analysis reveals that the sodium storage process follows a pseudo-solid-solution reaction mechanism and the volume change ratio is less than 3% during charging/discharging. In order to study the practical application capability of Na3.36FeV(PO4)3, we assemble the pre-activated cathode and a hard carbon anode into a full cell, which exhibits high initial discharge capacities of 103 and 91.3 mA h g−1 at 0.5C and 10C, respectively. This work will provide new insights into the structural engineering of low-toxicity and ultralong-life NASICON-type cathode materials for SIBs.
机译:钠在不同阴极材料电池,Na3V2 (PO4) 3吸引了注意由于其优秀的电化学表演钒限制其实际价格应用程序。钒与无毒、廉价的过渡金属元素具有重要意义。地球上充足的铁元素部分取代钒元素,成功地合成Na3.36FeV Na超离子导体(PO4) 3结构。最优碳含量可以提供一个初始容量是97.6 mA h g−1在0.5摄氏度高容量保留96.4%的200年之后周期。容量90.4 mA h g−1 10 c,和能力后可以获得5000年保留80%周期。材料可以补偿电化学反应。原位x射线衍射分析表明,钠存储过程之前pseudo-solid-solution和反应机制体积变化比例小于3%充电/放电。实际应用能力Na3.36FeV (PO4) 3,我们组装预先激活阴极和硬碳阳极成一个完整的细胞,展品高初始放电容量103和91.3 mA h g−1 0.5 c和10 c,分别。低毒的结构工程和ultralong-life NASICON-type阴极材料兄弟姐妹。

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