论文标题

硼磷烯是一种有前途的狄拉克阳极

Borophosphene as a promising Dirac anode with large capacity and high-rate capability for sodium-ion batteries

论文作者

Zhang, Yang, Zhang, Er-Hu, Xia, Ming-Gang, Zhang, Sheng-Li

论文摘要

由于固有的安全性和大量的地球钠丰度,钠离子电池(SIB)引起了广泛的关注,因为潜在的低成本存储替代锂离子电池(LIBS)。对于开发竞争性SIB,具有较大容量和快速离子扩散的高效阳极材料是必不可少的。在这项研究中,根据密度功能理论计算,提议二维(2D)Dirac单层(即硼磷烯)是高性能SIBS的有希望的阳极材料。探索了NA吸附和扩散,最大特定容量,开路电压,周期性稳定性和电子性能与劣质电荷分析的性能。发现硼磷烯可以自发吸附Na原子,结合能为-0.838 eV。低扩散能屏障为0.221 eV表明快速离子电导率。更有趣的是,在硼磷烯中可以实现1282 mAh/g的最大比能力,这是SIBS 2D阳极材料中报告的最大值之一。估计平均电压为0.367 V,这意味着阳极材料的合适电压。金属特性,微小的表面膨胀以及含水的硼磷烯的良好动力学稳定性会引起高电导率和有利的环可环性。上面的这些优点表明,硼磷烯可用作具有出色特定能力,高率能力和有利的环环性的出色表现的SIBS的Dirac阳极材料。

Sodium-ion batteries (SIBs) have attracted a great deal of attention as potential low-cost energy storage alternatives to Lithium-ion batteries (LIBs) due to the intrinsic safety and great abundance of sodium on Earth. For developing competitive SIBs, highly efficient anode materials with large capacity and rapid ion diffusion are indispensable. In this study, a two-dimensional (2D) Dirac monolayer, that is borophosphene, is proposed to be a promising anode material for high performance SIBs on the basis of density functional theory calculations. The performances of Na adsorption and diffusion, maximum specific capacity, open circuit voltage, cyclical stability and electronic properties combined with Bader charge analysis are explored. It is found that the borophosphene can spontaneously adsorb Na atom with binding energy of -0.838 eV. A low diffusion energy barrier of 0.221 eV suggests rapid ion conductivity. More intriguingly, a maximum specific capacity of 1282 mAh/g can be achieved in borophosphene, which is one of the largest values reported in 2D anode materials for SIBs. A low average voltage of 0.367 V is estimated, implying a suitable voltage of the anode material. Metallic properties, tiny surface expansion, and good kinetic stability of sodiated borophosphene give rise to high electrical conductivity and favorable cyclability. These advantages above suggest the borophosphene can be used as a Dirac anode material for SIBs with excellent performances of large specific capacity, high-rate capability, and favorable cyclability.

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