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一种作为高性能金属离子电池通用阳极材料的狄拉克节面半金属碳基结构。

A Dirac nodal surface semi-metallic carbon-based structure as a universal anode material for metal-ion batteries with high performance.

作者信息

Zhang Shouren, Liu Huili, Zhang Yadan, Wang Shuaiwei, Yang Baocheng

机构信息

Henan Key Laboratory of Nanocomposites and Applications, Institute of Nanostructured Functional Materials, Huanghe Science and Technology College, Zhengzhou 450006, China.

出版信息

Phys Chem Chem Phys. 2021 Sep 14;23(34):18744-18751. doi: 10.1039/d1cp02306c. Epub 2021 Aug 19.

Abstract

The rapid development of electronic devices requires high power storage batteries. However, reported 3D carbon-based materials are semiconductors or metals and are used in Li- or Na-ion batteries with low capacities. Thus, it is of interest to discover whether there is a universal semi-metallic material for use in high performance Li-, Na-, and K-ion batteries. Inspired by the recent synthesis of 3D carbon-based materials, in the research reported here, a 3D regular porous structure (bct-C56) is designed using graphene sheets. The porous carbon-based material has mechanical, dynamic, thermal, and mechanical stabilities. Interestingly, bct-C56 exhibits semi-metallic features with two Dirac nodal surfaces with mirror symmetry, as well as high Fermi velocities, indicating high electron-transport abilities. More excitingly, its theoretical capacities are 743.8, 478.2, and 425.0 mA h g, with diffusion barriers of 0.05-0.12, 0.07-0.12, and 0.03-0.05 eV, average OCVs of 0.31, 0.45, and 0.59 V, and volume expansion levels of 1.2%, 0.02%, and 3.1%, in Li-, Na-, and K-ion batteries, respectively. All these excellent characteristics suggest that semi-metallic bct-C56 is a universal anode material for use in metal-ion batteries with a fast charge-discharge rate. In this research, not only was a new material with a Dirac nodal surface feature designed, but it also offers an approach for the creation of high performance and universal metal-ion battery anodes with 3D porous carbon materials.

摘要

电子设备的快速发展需要高能量存储电池。然而,已报道的三维碳基材料为半导体或金属,用于容量较低的锂或钠离子电池。因此,探索是否存在一种通用的半金属材料用于高性能锂、钠和钾离子电池具有重要意义。受近期三维碳基材料合成的启发,在本文报道的研究中,利用石墨烯片设计了一种三维规则多孔结构(bct-C56)。这种多孔碳基材料具有机械、动力学、热学和力学稳定性。有趣的是,bct-C56表现出半金属特性,具有两个具有镜像对称的狄拉克节点面以及高费米速度,表明其具有高电子传输能力。更令人兴奋的是,其理论容量在锂离子电池、钠离子电池和钾离子电池中分别为743.8、478.2和425.0 mA h g,扩散势垒分别为0.05 - 0.12、0.07 - 0.12和0.03 - 0.05 eV,平均开路电压分别为0.31、0.45和0.59 V,体积膨胀率分别为1.2%、0.02%和3.1%。所有这些优异特性表明,半金属的bct-C56是一种用于快速充放电速率的金属离子电池的通用负极材料。在本研究中,不仅设计了一种具有狄拉克节点面特征的新材料,还为利用三维多孔碳材料制备高性能通用金属离子电池负极提供了一种方法。

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