首页> 外文期刊>Modern Physics Letters, B. Condensed Matter Physics, Statistical Physics, Applied Physics >Structural, electronic, sodium diffusion and elastic properties of Na-P alloy anode for Na-ion batteries: Insight from first-principles calculations
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Structural, electronic, sodium diffusion and elastic properties of Na-P alloy anode for Na-ion batteries: Insight from first-principles calculations

机译:Na-离子电池用Na-P合金阳极的结构,电子,钠扩散和弹性特性:第一性原理的见解

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摘要

Sodium-ion batteries (NIBs) as an alternative to lithium-ion batteries (LIBs) have recently received great attentions because of the relatively high abundance of sodium. Searching for suitable anode materials has always been a hot topic in the field of NIB study. Recent reports show that phosphorus-based materials are potential as the anode materials for NIBs. Using first-principles calculations, herein, we study the atomic and electronic structures, diffusion dynamics and intrinsic elastic properties of various Na-P alloy compounds (NaP5, Na3P11, NaP and Na3P) as the intermediate phases during Na extraction/insertion in phosphorus-based anode materials. It is found that all the crystalline phases of Na P alloy phases considered in our study are semiconductors with band gaps larger than that of black phosphorus (BP). The calculations of Na diffusion dynamics indicate a relatively fast Na diffusion in these materials, which is important for good rate performance. In addition, the diffusion channels of sodium ions are one-dimensional in NaP5 phase and three-dimensional in other three phases (Na3P11, NaP and Na3P). Elastic constant calculations indicate that all four phases are mechanically stable. Among them, however, NaP5, Na3P11 and NaP alloy phases are ductile, while the fully sodiated phase Na3P is brittle. In order to improve the electrochemical performance of Na P alloy anodes for NIBs, thus, promoting ductility of Na P phase with high sodium concentration may be an effective way.
机译:由于钠含量相对较高,作为锂离子电池(LIB)替代品的钠离子电池(NIB)最近受到了广泛的关注。寻找合适的阳极材料一直是NIB研究领域的热门话题。最近的报告显示,磷基材料有可能作为NIB的阳极材料。在本文中,使用第一性原理计算,我们研究了各种Na-P合金化合物(NaP5,Na3P11,NaP和Na3P)作为在磷中Na提取/插入过程中的中间相的原子和电子结构,扩散动力学和固有弹性。阳极材料。发现我们研究中考虑的Na P合金相的所有晶相都是带隙大于黑磷(BP)的半导体。 Na扩散动力学的计算表明这些材料中Na扩散相对较快,这对于获得良好的速率性能很重要。此外,钠离子的扩散通道在NaP5相中是一维的,在其他三个相(Na3P11,NaP和Na3P)中是三维的。弹性常数计算表明所有四个相都是机械稳定的。然而,其中NaP5,Na3P11和NaP合金相具有延性,而完全固溶的Na3P相则易碎。为了改善用于NIBs的Na P合金阳极的电化学性能,因此,提高高钠浓度Na P相的延展性可能是一种有效的方法。

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