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首页> 外文期刊>Journal of physical chemistry letters >First-Principles Study of Phosphorene and Graphene Heterostructure as Anode Materials for Rechargeable Li Batteries
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First-Principles Study of Phosphorene and Graphene Heterostructure as Anode Materials for Rechargeable Li Batteries

机译:磷和石墨烯异质结构作为可充电锂电池负极材料的第一性原理研究

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There is a great desire to develop the high-efficient anodes materials for Li batteries, which require not only large capacity but also high stability and mobility. In this work, the phosphorene/graphene heterostructure (P/G) was carefully explored based on first-principles calculations. The binding energy of Li on the pristine phosphorene is relatively weak (within 1.9 eV), whereas the phosphorene/graphene heterostructure (P/G) can greatly improve the binding energy (2.6 eV) without affecting the high mobility of Li within the layers. The electronic structures show that the large Li adsorption energy and fast diffusion ability of the P/G origin from the interfacial synergy effect. Interestingly, the P/G also displays ultrahigh stiffness (C-a, = 350 N/m, C-zz = 464 N/m), which can effectively avoid the distortion of the pristine phosphorene after the insertion of lithium. Thus, P/G can greatly enhance the cycle life of the battery. Owing to the high capacity, good conductivity, excellent Li mobility, and ultrahigh stiffness, P/G is a very promising anode material in Li-ion batteries (LIBs).
机译:迫切需要开发用于锂电池的高效阳极材料,该材料不仅需要大容量,而且还要求高稳定性和迁移率。在这项工作中,基于第一性原理的计算,磷/石墨烯的异质结构(P / G)得到了仔细研究。 Li在原始磷烯上的结合能相对较弱(在1.9 eV内),而磷烯/石墨烯异质结构(P / G)可以大大提高结合能(2.6 eV),而不会影响Li在层中的高迁移率。电子结构表明,P / G的大Li吸附能和快速扩散能力源于界面协同效应。有趣的是,P / G还显示出超高的刚度(C-a,= 350 N / m,C-zz = 464 N / m),可以有效地避免插入锂后原始磷的变形。因此,P / G可以大大延长电池的循环寿命。由于高容量,良好的导电性,出色的锂迁移率和超高的刚度,P / G是锂离子电池(LIB)中非常有前途的负极材料。

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