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Vanadium diphosphide as a negative electrode material for sodium secondary batteries

机译:二磷钒作为钠二次电池的负极材料

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摘要

The abundance of sodium resources has sparked interest in the development of sodium-ion batteries for large-scale energy storage systems, amplifying the need for high-performance negative electrodes. Although transition metal phosphide electrodes have shown remarkable performance and great versatility for both lithium and sodium batteries, their electrochemical mechanisms in sodium batteries, particularly vanadium phosphides, remain largely elusive. Herein, we delineate the performance of VP2 as a negative electrode alongside ionic liquids in sodium-ion batteries. The polycrystalline VP2 is synthesized via one-step high energy ball-milling and characterized using X-ray diffraction, X-ray photoelectron spectroscopy, and transmission electron microscopy. Electrochemical tests ascertained improved performance at intermediate temperatures, where the initial cycle was conducted at 100 mA g(-1) yielded a significantly higher discharge capacity of 243 mAh g(-1) at 90 degrees C compared to the limited capacity of 49 mAh g(-1) at 25 degrees C. Enhanced rate and cycle performance are also achieved at 90 degrees C. Electrochemical impedance spectroscopy and scanning electron microscopy further reveal a reduced charge transfer resistance at 90 degrees C and the formation of a uniform and stable solid electrolyte interface (SEI) layer after cycling. X-ray diffraction and nuclear magnetic resonance spectroscopy are used to confirm the conversion-based mechanism forming Na3P after charging.
机译:丰富的钠资源引发了对大型能量储存系统的钠离子电池的开发的兴趣,可以放大对高性能负电极的需求。虽然过渡金属磷化水极具对锂和钠电池的性能显着和巨大的通用性,但它们在钠电池中的电化学机制,特别是磷化钒,仍然很大程度上是难以捉摸的。在此,我们描绘了作为钠离子电池中的离子液体的负极的VP2作为负电极的性能。多晶VP2通过一步高能球磨合成,并使用X射线衍射,X射线光电子能谱和透射电子显微镜表征。电化学测试在中间温度下确定了性能,其中初始循环在100mA g(-1)下进行,与49mahg的有限容量相比,在90℃下产生243mAhg(-1)的显着更高的放电容量(-1)在25℃下,增强速率和循环性能也在90℃下实现。电化学阻抗光谱和扫描电子显微镜进一步揭示了90℃下的减少的电荷转移电阻,并形成均匀且稳定的固体电解质循环后的界面(SEI)层。 X射线衍射和核磁共振光谱用于确认充电后形成Na3P的基于转化机制。

著录项

  • 来源
    《Journal of power sources》 |2021年第31期|229182.1-229182.10|共10页
  • 作者单位

    Kyoto Univ Grad Sch Energy Sci Sakyo Ku Kyoto 6068501 Japan;

    Kyoto Univ Grad Sch Energy Sci Sakyo Ku Kyoto 6068501 Japan|Kyoto Univ Unit Elements Strategy Initiat Catalysts & Batter Kyoto 6158510 Japan;

    Ritsumeikan Univ Dept Appl Chem 1-1-1 Noji Higashi Shiga 5258577 Japan;

    Ritsumeikan Univ Dept Appl Chem 1-1-1 Noji Higashi Shiga 5258577 Japan;

    Ritsumeikan Univ Dept Appl Chem 1-1-1 Noji Higashi Shiga 5258577 Japan;

    Natl Inst Adv Ind Sci & Technol Nanomat Res Inst Cent 5 1-1-1 Higashi Tsukuba Ibaraki 3058565 Japan;

    Kyoto Univ Unit Elements Strategy Initiat Catalysts & Batter Kyoto 6158510 Japan|Okayama Univ Grad Sch Nat Sci & Technol 3-1-1 Tsushima Naka Okayama 7008530 Japan;

    Okayama Univ Grad Sch Nat Sci & Technol 3-1-1 Tsushima Naka Okayama 7008530 Japan;

    Kyoto Univ Grad Sch Energy Sci Sakyo Ku Kyoto 6068501 Japan|Kyoto Univ Unit Elements Strategy Initiat Catalysts & Batter Kyoto 6158510 Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Sodium ion battery; Phosphide; Ionic liquid;

    机译:钠离子电池;磷化物;离子液体;

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