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Borophene as a promising anode material for sodium-ion batteries with high capacity and high rate capability using DFT

机译:硼苯是使用DFT的高容量和高倍率能力的钠离子电池的有希望的负极材料

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Two-dimensional boron synthesized by the chemical vapor deposition method is an atomically thin layer of boron with both light weight and metallicity. To investigate the potential of borophene as an anode material in sodium-ion batteries, first-principles calculations and ab initio molecular dynamics simulations were carried out. The calculated results reveal that after introducing vacancy defects, the special puckered structure becomes relatively flat and the metallic nature of the defective borophene is enhanced, while the defects in borophene can weaken sodium adsorption. A single sodium atom is preferentially absorbed on the B _(V) site. The adsorption energies gradually reduce with an increase in sodium concentration due to the increased Na–Na repulsion. The fully sodium storage phase of borophene corresponds to NaB _(2) with a theoretical specific capacity of 1240 mA h g ~(?1) , which is much larger than that of other two-dimensional materials. Most interestingly, sodium ion flows in the furrows of puckered borophene are extremely fast with a low energy barrier of 30 meV. Meanwhile, sodium diffusion on borophene was found to be highly anisotropic, as further verified by the results of the ab initio molecular dynamics simulations. The sodiated-borophene nanostructure shows enhanced electronic conductivity during the whole sodiation process, which is superior to other anode materials. Borophene is expected to be a promising candidate with high capacity and high rate capability for anode materials in sodium-ion batteries.
机译:通过化学气相沉积法合成的二维硼是原子上薄且重量轻且具有金属性的硼薄层。为了研究硼苯作为钠离子电池负极材料的潜力,进行了第一性原理计算和从头算分子动力学模拟。计算结果表明,引入空位缺陷后,特殊的褶皱结构变得相对平坦,缺陷的硼苯的金属性质得到增强,而硼苯的缺陷会削弱钠的吸附。单个钠原子优先吸附在B_(V)位上。由于Na-Na排斥的增加,吸附能随着钠浓度的增加而逐渐降低。硼苯的全钠存储相相当于NaB_(2),其理论比容量为1240 mA h g〜(?1),远大于其他二维材料的NaB _(2)。最有趣的是,皱纹化的硼苯沟中的钠离子流动非常快,具有30 meV的低能垒。同时,钠的扩散在硼烷中被发现是高度各向异性的,这是由头算分子动力学模拟的结果进一步证实的。钠化硼烷的纳米结构在整个钠化过程中显示出增强的电子传导性,这优于其他阳极材料。硼硼烷有望成为具有潜力的钠离子电池负极材料的高容量和高倍率的候选材料。

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