Zhou Qun-Yi, Tan Long, Lv Tong-Bao, Li Meng-Chao, Zhang Jing-Jian, Zhao Zhi-Qing, Jin Xin-Jian, Liu Zhi, Hou Pei-Pei, Zeng Zheling, Deng Shuguang, Dai Gui-Ping
Department of Chemical Engineering, College of Chemistry and Chemical Engineering, Nanchang University, Nanchang330031, China.
School of Physics and Materials Science, Nanchang University, Nanchang330031, China.
ACS Appl Mater Interfaces. 2023 Jan 18;15(2):3037-3046. doi: 10.1021/acsami.2c19987. Epub 2023 Jan 9.
Nanocarbons (NCs) consisting of carbon nanotubes (CNTs) and carbon nanofibers (CNFs) were coated on the surface of nickel foam (NF) via a chemical vapor deposition method. The CNFs formed conductive networks on NF, while the CNTs grew perpendicular to the surface of the CNFs, accompanied with the formation of Ni nanoparticles (Ni NPs) at the end of CNTs. The unique Ni-NCs-coated NF with a porous structure was applied as the three-dimensional (3D) current collector of lithium-sulfur (Li-S) batteries, which provided enough space to accommodate the electrode materials inside itself. Therefore, the 3D interconnected conductive framework of the coated NF collector merged in the electrode materials shortened the path of electron transport, and the generated Ni NPs could adsorb lithium polysulfides (LiPSs) and effectively accelerated the conversion kinetics of LiPSs as well, thereby suppressing the "shuttle effect". Moreover, the rigid framework of NF would also constrain the movement of the electrode compositions, which benefited the stability of the Li-S batteries. As a matter of fact, the Li-S battery based on the Ni-NCs-coated NF collector delivered an initial discharge capacity as high as 1472 mAh g at 0.1C and outstanding high rate capability at 3C (802 mAh g). Additionally, low decay rates of 0.067 and 0.08% at 0.2C (300 cycles) and 0.5C (500 cycles) have been obtained, respectively. Overall, our prepared Ni-NCs-coated NF collector is promising for the application in high-performance Li-S batteries.
由碳纳米管(CNT)和碳纳米纤维(CNF)组成的纳米碳(NC)通过化学气相沉积法涂覆在泡沫镍(NF)表面。CNF在NF上形成导电网络,而CNT垂直于CNF表面生长,同时在CNT末端形成镍纳米颗粒(Ni NP)。具有多孔结构的独特的涂覆Ni-NC的NF被用作锂硫(Li-S)电池的三维(3D)集流体,其自身内部提供了足够的空间来容纳电极材料。因此,涂覆的NF集流体的3D互连导电框架融入电极材料中,缩短了电子传输路径,并且生成的Ni NP还可以吸附多硫化锂(LiPS)并有效加速LiPS的转化动力学,从而抑制“穿梭效应”。此外,NF的刚性框架也将限制电极组合物的移动,这有利于Li-S电池的稳定性。事实上,基于涂覆Ni-NC的NF集流体的Li-S电池在0.1C时的初始放电容量高达1472 mAh g,在3C时具有出色的高倍率性能(802 mAh g)。此外,在0.2C(300次循环)和0.5C(500次循环)下分别获得了0.067%和0.08%的低衰减率。总体而言,我们制备的涂覆Ni-NC的NF集流体在高性能Li-S电池中的应用前景广阔。