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Hierarchical Hollow-Microsphere Metal–Selenide@Carbon Composites with Rational Surface Engineering for Advanced Sodium Storage

机译:等级空心微球 - 硒硒烯硒烯内酯@碳复合材料,具有高钠储存的合理表面工程

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摘要

As a result of its high-energy density, metal-selenides have demanded attention as a potential energy-storage material. But they suffer from volume expansion, dissolved poly-selenides and sluggish kinetics. Herein, utilizing' thermal selenization via the Kirkendall effect, microspheres of NiSe2 confined by carbon are successfully obtained from the self-assembly of Ni-precursor/PPy. The derived hierarchical hollow architecture increases the active defects for sodium storage, while the existing double N-doped carbon layers significantly alleviate the volume swelling. As a result, it shows ultrafast rate capability, delivering a stable capacity of 374 mAh g(-1), even after 3000 loops at 10.0 A g(-1). These remarkable results may be ascribed to the Ni Symbol of the Klingon Empire O Symbol of the Klingon Empire C bonds on the interface of NiSe2 and the carbon film, which leads to the faster transfer of ions, the effective trapping of poly-selenide, and the highly reversible conversion reaction. The kinetic analysis of cyclic voltammetry (CV) demonstrates that the electrochemical process is mainly dominated by pseudocapacitive behaviors. Supported by the results of electrochemical impedance spectroscopy (EIS), it is confirmed that the solid-electrolyte interface films are reversibly formed/decomposed during cycling. Given this, this elaborate work might open up a potential avenue for the rational design of metal-sulfur/selenide anodes for advanced battery systems.
机译:由于其高能量密度,金属硒化物要求关注潜在的储能材料。但它们患有体积扩张,溶解聚硒化物和缓慢的动力学。这里,利用KIRKENDALL效应使用热硒化,从Ni-Precearsor / PPY的自组装成功地获得NISE2的NISE2的微球。衍生的层级空心架构增加了钠储存的活性缺陷,而现有的双N掺杂碳层显着缓解体积溶胀。结果,它显示超快速率能力,即使在10.0Ag(-1)的3000次环后,也能提供374mahg(-1)的稳定容量。这些显着的结果可以归因于NISE2和碳膜界面的Klingon帝国C键的Klingon帝国互补符号的Ni符号,这导致离子的速度更快,有效诱捕聚硒化物,以及高度可逆的转化反应。循环伏安法(CV)的动力学分析表明,电化学过程主要由假偶联行为主导。通过电化学阻抗谱(EIS)的结果支持,确认在循环期间可逆地形成固体电解质界面膜/分解。鉴于这一点,这种精心制作的工作可能会为先进电池系统开辟金属 - 硫/硒化阳极的合理设计潜在的途径。

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  • 来源
    《Advanced energy materials》 |2019年第1期|1803035.1-1803035.13|共13页
  • 作者单位

    Cent S Univ Coll Chem & Chem Engn State Key Lab Powder Met Changsha 4101383 Hunan Peoples R China;

    Cent S Univ Coll Chem & Chem Engn State Key Lab Powder Met Changsha 4101383 Hunan Peoples R China;

    Cent S Univ Coll Chem & Chem Engn State Key Lab Powder Met Changsha 4101383 Hunan Peoples R China;

    Cent S Univ Coll Chem & Chem Engn State Key Lab Powder Met Changsha 4101383 Hunan Peoples R China;

    Cent S Univ Coll Chem & Chem Engn State Key Lab Powder Met Changsha 4101383 Hunan Peoples R China;

    Cent S Univ Coll Chem & Chem Engn State Key Lab Powder Met Changsha 4101383 Hunan Peoples R China|Henan Univ Technol Coll Chem Chem & Environm Engn Zhengzhou 450000 Henan Peoples R China;

    Cent S Univ Coll Chem & Chem Engn State Key Lab Powder Met Changsha 4101383 Hunan Peoples R China;

    Cent S Univ Coll Chem & Chem Engn State Key Lab Powder Met Changsha 4101383 Hunan Peoples R China;

    Cent S Univ Coll Chem & Chem Engn State Key Lab Powder Met Changsha 4101383 Hunan Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    electrochemistry; Ni Symbol of the Klingon Empire O Symbol of the Klingon Empire C bonds; NiSe2; sodium-ion batteries;

    机译:电化学;Klingon Empire O符号的Klingon Empire C键的符号;Nise2;钠离子电池;

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