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硼烯/磷烯异质结作为锂离子电池负极材料的第一性原理研究

First-principles study of borophene/phosphorene heterojunction as anode material for lithium-ion batteries.

作者信息

Yang Zhifang, Li Wenliang, Zhang Jingping

机构信息

Faculty of Chemistry, National & Local United Engineering Laboratory for Power Batteries, Northeast Normal University, Changchun 130024, People's Republic of China.

出版信息

Nanotechnology. 2021 Nov 26;33(7). doi: 10.1088/1361-6528/ac3686.

Abstract

It is urgent to explore high-capacity and efficient anode materials for rechargeable lithium-ion batteries. For borophene and phosphorene, two configurations are considered to form a heterojunction: twist angles of 0° (I) and 90° (II). There is a less degree of mismatch and larger formation energy in the formation of a B/P heterojunction, implying that borophene and phosphorene form the stable heterojunction. The heterojunctions of these two configurations demonstrate good conductivity, and the electrons near the Fermi level are mainly provided by borophene. Very importantly, the low energy barrier for interlayer migration of Li is observed in configuration I (0.14eV) and II (0.06 eV), and the migration of Li on the borophene and phosphorene side of the heterojunction still maintains its original energy barrier in bare monolayer. Moreover, the two configurations show the theoretical capacity as high as 738.69 and 721.86 mA h g, respectively, which is comparable to bare phosphorene. Furthermore, compared with bare phosphorene, the average voltage is greatly reduced after the formation of heterojunction. Hence, the overall electrochemical properties of the B/P heterojunction have been enhanced by combining the advantages of the individual phosphorene and borophene monolayers, which guarantees the B/P heterojunction as a good candidate for the anode material used in Li-ion batteries.

摘要

探索用于可充电锂离子电池的高容量和高效阳极材料迫在眉睫。对于硼烯和磷烯,考虑两种构型来形成异质结:0°(I)和90°(II)的扭转角。在形成B/P异质结时,失配程度较小且形成能较大,这意味着硼烯和磷烯形成了稳定的异质结。这两种构型的异质结表现出良好的导电性,费米能级附近的电子主要由硼烯提供。非常重要的是,在构型I(0.14eV)和II(0.06eV)中观察到Li层间迁移的低能垒,并且异质结的硼烯和磷烯侧上Li的迁移在裸单层中仍保持其原始能垒。此外,这两种构型分别显示出高达738.69和721.86 mA h g的理论容量,这与裸磷烯相当。此外,与裸磷烯相比,形成异质结后平均电压大大降低。因此,通过结合单个磷烯和硼烯单层的优点,B/P异质结的整体电化学性能得到了增强,这保证了B/P异质结作为锂离子电池阳极材料的良好候选者。

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