Liu Yafei, Du Xuming, Li Yi, Bao Enhui, Ren Xianglin, Chen Huiyu, Tian Xiaodong, Xu Chunju
School of Materials Science and Engineering, North University of China, Taiyuan 030051, China.
College of Materials and Textile Engineering & Nanotechnology Research Institute, Jiaxing University, Jiaxing 314001, China.
J Colloid Interface Sci. 2022 Dec;627:815-826. doi: 10.1016/j.jcis.2022.07.105. Epub 2022 Jul 21.
Herein, the MnCoO microflowers (MFs) assembled by two-dimensional (2D) porous nanosheets were prepared through an initial solvothermal reaction with a subsequent annealing process. In this architecture, many interconnected 2D thin nanosheets were self-assembled together to form a 3D hierarchical MF with plenty of open channels. Such structure endows these MnCoO MFs with large specific surface area of 156.85 m/g for energy storage and provides rich ion diffusion pathways for ion transportation, thus the as-prepared MFs can exhibit good overall electrochemical performance in both hybrid supercapacitor (HSC) and lithium-ion battery (LIB). For the utilization in supercapacitor, the MFs deliver a specific capacity of 287.02 C/g at 1 A/g as well as a rate capability with 73.3 % capacity retention at 8 A/g. The energy density of the HSC assembled by MFs and activated carbon can reach up to 30.33 W h kg at 959.35 W kg. When applied as the anode for Li-ion battery, a specific capacity of 1340.8 mA h g at 0.1 A/g and cycling performance with low capacity loss of 0.73 mAh/g per cycle after 200 cycles at 0.5 A/g can be achieved. This work uncovers a repeatable and facile synthetic strategy to prepare transition metal oxides with large specific surface area and good overall electrochemical property.
在此,通过初始溶剂热反应和随后的退火过程制备了由二维(2D)多孔纳米片组装而成的MnCoO微花(MFs)。在这种结构中,许多相互连接的2D薄纳米片自组装在一起,形成了具有大量开放通道的三维分级MF。这种结构赋予这些MnCoO MFs 156.85 m²/g的大比表面积用于能量存储,并为离子传输提供了丰富的离子扩散途径,因此所制备的MFs在混合超级电容器(HSC)和锂离子电池(LIB)中均能表现出良好的整体电化学性能。对于超级电容器的应用,MFs在1 A/g时的比容量为287.02 C/g,在8 A/g时具有73.3%的容量保持率的倍率性能。由MFs和活性炭组装而成的HSC在959.35 W/kg时的能量密度可达30.33 W h/kg。当用作锂离子电池的阳极时,在0.1 A/g时的比容量为1340.8 mA h/g,在0.5 A/g下循环200次后,每循环的容量损失低至0.73 mAh/g,具有良好的循环性能。这项工作揭示了一种可重复且简便的合成策略,用于制备具有大比表面积和良好整体电化学性能的过渡金属氧化物。