Li Qian, Wu Yingqiang, Wang Zhaomin, Ming Hai, Wang Wenxi, Yin Dongming, Wang Limin, Alshareef Husam N, Ming Jun
State Key Laboratory of Rare Earth Resource Utilization, Changchun Institute of Applied Chemistry, CAS, Changchun 130022, China.
School of Applied Chemistry and Engineering, University of Science and Technology of China, Hefei 230026, China.
ACS Appl Mater Interfaces. 2020 Apr 8;12(14):16276-16285. doi: 10.1021/acsami.9b22175. Epub 2020 Mar 24.
Creating new architectures combined with super diverse materials for achieving more excellent performances has attracted great attention recently. Herein, we introduce a novel dual metal (oxide) microsphere reinforced by vertically aligned carbon nanotubes (CNTs) and covered with a titanium oxide metal ion-transfer diffusion layer. The CNTs penetrate the oxide particles and buffer structural volume change while enhancing electrical conductivity. Meanwhile, the external TiO-C shell serves as a transport pathway for mobile metal ions (e.g., Li) and acts as a protective layer for the inner oxides by reducing the electrolyte/metal oxide interfacial area and minimizing side reactions. The proposed design is shown to significantly improve the stability and Coulombic efficiency (CE) of metal (oxide) anodes. For example, the as-prepared MnO-CNTs@TiO-C microsphere demonstrates an extremely high capacity of 967 mA h g after 200 cycles, where a CE as high as 99% is maintained. Even at a harsh rate of 5 A g (ca. 5 C), a capacity of 389 mA h g can be maintained for thousands of cycles. The proposed oxide anode design was combined with a nickel-rich cathode to make a full-cell battery that works at high voltage and exhibits impressive stability and life span.
近年来,通过结合超多样的材料来创建新架构以实现更优异的性能受到了广泛关注。在此,我们介绍一种新型的双金属(氧化物)微球,其由垂直排列的碳纳米管(CNT)增强,并覆盖有氧化钛金属离子转移扩散层。碳纳米管穿透氧化物颗粒,缓冲结构体积变化,同时提高电导率。与此同时,外部的TiO-C壳层作为可移动金属离子(如Li)的传输通道,并通过减小电解质/金属氧化物界面面积和最小化副反应,作为内部氧化物的保护层。所提出的设计被证明能显著提高金属(氧化物)阳极的稳定性和库仑效率(CE)。例如,所制备的MnO-CNTs@TiO-C微球在200次循环后展现出967 mA h g的极高容量,其中保持了高达99%的库仑效率。即使在5 A g(约5 C)的严苛倍率下,389 mA h g的容量也能维持数千次循环。所提出的氧化物阳极设计与富镍阴极相结合,制成了一种全电池,该全电池在高电压下工作,并展现出令人印象深刻的稳定性和寿命。