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首页> 外文期刊>Advanced energy materials >Relationship between Multivalent Cation Charge Carriers and Organic Solvents on Nanoporous Carbons in 4 V-Window Magnesium Ion Supercapacitors
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Relationship between Multivalent Cation Charge Carriers and Organic Solvents on Nanoporous Carbons in 4 V-Window Magnesium Ion Supercapacitors

机译:4 V窗镁离子超级电容器中纳米多孔碳多价阳离子载体和有机溶剂之间的关系

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摘要

Multivalent charge carriers with a smaller ionic radius exhibit strong ionic interactions with solvent molecules. This can lead to unusual characteristics that typically are not observed in conventional monovalent charge carriers. Herein, the capacitive Mg ion storage behavior on nanoporous carbons is investigated within different solvent systems. A larger multivalent charge carrier, Ca ions, and alkali cations with different ionic radii are used as a comparison. In addition, the effects of nanopores on solvated Mg ion physisorption are observed in two types of nanoporous carbon, namely typical microporous carbon and ultramesoporous carbon (MEC). The oxidation stability of dimethoxyethane (DME) solvent is significantly improved by forming a solvation complex with Mg ions, while the destabilization effect of DME induced by anions is suppressed by the Mg ion charge carriers. The use of MEC as an active electrode material in a Mg ion-DME electrolyte system leads to high electrochemical performance of the Mg ion supercapacitor over a wide range of operating voltages. A high-performance 4 V Mg ion supercapacitor with charge-injected symmetric MEC-based electrodes is evaluated, where excellent specific energy and power densities of approximate to 106 W h kg(-1) and approximate to 11870 W kg(-1), respectively, are achieved.
机译:具有较小离子半径的多价电荷载流子表现出与溶剂分子的强离子相互作用。这可以导致在常规的一价电荷载体中通常未观察到的不寻常特征。这里,在不同的溶剂系统内研究了纳米多孔碳的电容Mg离子储存行为。使用具有不同离子半径的较大的多价电荷载体,Ca离子和碱阳离子作为比较。此外,在两种类型的纳米多孔碳,即典型的微孔碳和超孔碳(MEC)中观察纳米孔对溶剂化Mg离子物质的影响。通过用Mg离子形成溶剂化合物,显着改善二甲氧乙烷(DME)溶剂的氧化稳定性,而Mg离子电荷载体抑制了阴离子诱导的DME的稳定效应。 MEC作为Mg离子DME电解质系统中的有源电极材料的用途导致Mg离子超级电容器的高电化学性能在很宽的操作电压上。评估具有电荷注入的对称MEC电极的高性能4 V Mg离子超级电极,其中优异的特定能量和电力密度为106WH kg(-1),近似为11870 w kg(-1),分别实现。

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  • 来源
    《Advanced energy materials》 |2021年第30期|2101054.1-2101054.11|共11页
  • 作者单位

    Inha Univ Program Environm & Polymer Engn 100 Inha Ro Incheon 22212 South Korea;

    Korea Basic Sci Inst KBSI Res Ctr Mat Anal 169-148 Gwahak Ro Daejeon 34133 South Korea;

    Kangwon Natl Univ Div Chem Engn & Bioengn Chunchon 24341 Gangwon Do South Korea;

    Inha Univ Program Environm & Polymer Engn 100 Inha Ro Incheon 22212 South Korea|Inha Univ Dept Polymer Sci & Engn 100 Inha Ro Incheon 22212 South Korea;

    Korea Univ KU KIST Grad Sch Converging Sci & Technol 145 Anam Ro Seoul 02841 South Korea|Korea Univ Dept Integrat Energy Engn 145 Anam Ro Seoul 02841 South Korea;

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

    electrodes; magnesium ions; multivalent ions; nanoporous carbon; supercapacitors;

    机译:电极;镁离子;多价离子;纳米孔碳;超级电容器;

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