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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Assessing electrochemical properties and diffusion dynamics of metal ions (Na, K, Ca, Mg, Al and Zn) on a C2N monolayer as an anode material for non-lithium ion batteries
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Assessing electrochemical properties and diffusion dynamics of metal ions (Na, K, Ca, Mg, Al and Zn) on a C2N monolayer as an anode material for non-lithium ion batteries

机译:将金属离子(Na,K,Ca,Mg,Al和Zn)的电化学性质和扩散动力学评估为NO锂离子电池的阳极材料

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摘要

We perform first-principles molecular dynamics (FPMD) simulations together with a CI-NEB method to explore the structure, electrochemical properties and diffusion dynamics of a C2N monolayer saturated with various univalent, bivalent and trivalent metal ions. A characteristic irregular adsorption structure consisting of an inner coplanar layer at the large atomic pore and loosely bound outer layer is discovered for all six types of ions. The predicted specific capacities and mean open circuit voltages (OCVs) for them are: 600 mA h g(-1), and 0.26 V (Na); 385 mA h g(-1), and 1.56 V (K); 600 mA h g(-1), and 0.96 V (Mg); 713 mA h g(-1), and 1.31 V (Ca); 411 mA h g(-1), and 1.40 V (Zn); 1175 mA h g(-1), and 0.78 V (Al). For the energy favorable migration pathway, the diffusion energy barrier height for each ionic species is found to be 0.24 eV (Na+), 0.10 eV (K+), 0.25 eV (Mg2+) and 0.10 eV (Ca2+). The values are larger than 1.0 eV for both Zn(2+)and Al3+. FPMD simulation at 400 K further predicted that the diffusion coefficients of Na and K atoms absorbed on the C2N monolayer are 5.33 x 10(-9)m(2)s(-1)and 8.52 x 10(-9)m(2)s(-1), respectively, which are one order of magnitude higher than those of other remaining ions discussed in our work. The C2N monolayer shows promising electrochemical properties and ion diffusion dynamics for use as the anode material in alkali metal ion batteries.
机译:我们将第一原理分子动力学(FPMD)模拟与CI-NEB方法一起进行,探讨C2N单层饱和的结构,电化学性质和扩散动力学,其饱和各种单级,二价金属离子饱和。对于所有六种离子,发现了由大原子孔和松散结合的外层的内共环层组成的特征不规则吸附结构。预测的具体容量和平均开路电压(OCV)为:600 mA H G(-1)和0.26V(NA); 385 ma H g(-1)和1.56 V(k); 600 mA H G(-1)和0.96 V(Mg); 713 mA H g(-1)和1.31 V(CA); 411 mA H g(-1)和1.40 V(Zn); 1175 mA H G(-1)和0.78 V(Al)。对于能量有利的迁移途径,发现每个离子物质的扩散能阻挡高度为0.24eV(Na +),0.10eV(k +),0.25eV(Mg2 +)和0.10eV(Ca2 +)。对于Zn(2+)和Al3 +,值大于1.0eV。 400 k下的FPMD模拟进一步预测,在C2N单层吸收的Na和K原子的扩散系数为5.33×10(-9)m(2)s(2)s(-1)和8.52×10(-9)m(2) S(-1)分别比我们工作中讨论的其他剩余离子的数量级高一阶数。 C2N单层显示有希望的电化学性能和离子扩散动力学,用作碱金属离子电池中的阳极材料。

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    Xian Univ Technol Sch Mat Sci &

    Engn Xian 710048 Peoples R China;

    Xian Univ Technol Sch Mat Sci &

    Engn Xian 710048 Peoples R China;

    Xian Univ Technol Sch Mat Sci &

    Engn Xian 710048 Peoples R China;

    Xian Univ Technol Sch Mat Sci &

    Engn Xian 710048 Peoples R China;

    Xian Univ Technol Sch Mat Sci &

    Engn Xian 710048 Peoples R China;

    Xi An Jiao Tong Univ State Key Lab Elect Insulat &

    Power Equipment Xian 710049 Peoples R China;

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  • 正文语种 eng
  • 中图分类 物理学;化学;
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