首页> 外文期刊>Nano Energy >Yolk-shelled Sb@C nanoconfined nitrogen/sulfur co-doped 3D porous carbon microspheres for sodium-ion battery anode with ultralong high-rate cycling
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Yolk-shelled Sb@C nanoconfined nitrogen/sulfur co-doped 3D porous carbon microspheres for sodium-ion battery anode with ultralong high-rate cycling

机译:蛋黄壳SB @ C纳米核氮/硫共掺杂3D多孔3D多孔碳微球,用于钠离子电池阳极,具有超高速率循环

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摘要

Sb materials have considered to be one of the most excellent anode materials for sodium ion batteries (SIBs). Developing a Sb-based materials with high-rate long-term cycling durability is highly requisite for boosting their practical application as SIB anodes. In this work, yolk-shell structured Sb@C nanoconfined nitrogen-sulfur co-doped 3D porous carbon microspheres (Sb@NS-3DPCMSs) were prepared via salt-templating directed spray-drying strategy combined with ingenious and continuous high efficiency one-pot multi-step approach. The formation mechanism of the yolk-shell structure was revealed by first-principles simulations for the first time. In the constructed 3D architecture, the robust yolk-shell structure for confining Sb nanocrystals can provide enough void space for effectively buffering the volume expansion of Sb and thus remarkably stabilize the structural integrity of the overall electrode during rapid long-term cycling, while the interconnected empty carbon box with abundant hierarchical pores and high conductivity can facilitate the fast transport of electrons, sodium ions and electrolyte in the whole electrode. Moreover, nitrogen-sulfur co-doping can enhance the intercalation kinetics of sodium ions, and further increase the capacity. As a consequence, the resulting electrode based on the optimized Sb@NS-3DPCMSs exhibits high specific capacity (similar to 540 mA h g(-1) at 100 mA g(-1)), superior rate capability (334 mA h g(-1) at 20 A g(-1)), excellent high-rate cycling capacity retention even at low temperature of 5 degrees C, and ultralong high-rate cycling life (331 mA h g(-1) after 10000 cycles at 20 A g(-1)) as SIB anode.
机译:SB材料已被认为是钠离子电池(SIBS)最优异的阳极材料之一。以高速速率的长期循环耐久性开发基于SB的材料是使其作为SIB阳极作为SIB阳极的实际应用的必要条件。在这项工作中,通过盐模板定向的喷雾干燥策略制备yolk-shell结构Sb @ C纳米核氮 - 硫磺共掺杂的3D多孔碳微球(Sb @ NS-3DPCMS)。结合巧妙和连续的高效单锅多步方法。第一次通过第一原理模拟揭示了蛋黄壳结构的形成机制。在构造的3D架构中,用于限制SB纳米晶体的鲁棒yolk-壳结构可以提供足够的空隙空间,以便有效地缓冲Sb的体积膨胀,从而显着稳定在快速长期循环期间整体电极的结构完整性,而互连具有丰富的分层孔和高导电性的空碳盒可以促进整个电极中的电子,钠离子和电解质的快速传输。此外,氮硫共掺杂可以增强钠离子的插层动力学,并进一步提高容量。结果,基于优化的SB @ NS-3DPCMS的所得电极表现出高比容量(类似于100mA G(-1)的540mA Hg(-1)),优异的速率能力(334mA Hg(-1 )在20 A G(-1)),即使在低温为5摄氏度下,高速率循环容量保留,而超过20 A g的10000次循环后的超高速率循环寿命(331mA Hg(-1)) -1))作为sib阳极。

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  • 来源
    《Nano Energy》 |2019年第2019期|共10页
  • 作者单位

    Tianjin Univ Sch Mat Sci &

    Engn Tianjin Key Lab Composite &

    Funct Mat Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Mat Sci &

    Engn Tianjin Key Lab Composite &

    Funct Mat Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Mat Sci &

    Engn Tianjin Key Lab Composite &

    Funct Mat Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Mat Sci &

    Engn Tianjin Key Lab Composite &

    Funct Mat Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Mat Sci &

    Engn Tianjin Key Lab Composite &

    Funct Mat Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Mat Sci &

    Engn Tianjin Key Lab Composite &

    Funct Mat Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Mat Sci &

    Engn Tianjin Key Lab Composite &

    Funct Mat Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Mat Sci &

    Engn Tianjin Key Lab Composite &

    Funct Mat Tianjin 300072 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 能源与动力工程;
  • 关键词

    Yolk-shelled structure; Sb; N/S co-doped; 3D porous microspheres; Sodium-ion batteries;

    机译:蛋黄壳结构;SB;N / S共掺杂;3D多孔微球;钠离子电池;

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