Zhu Youqi, Guo Huizi, Zhai Huazhang, Cao Chuanbao
Research Center of Materials Science, Beijing Institute of Technology , Beijing 100081, China.
ACS Appl Mater Interfaces. 2015 Feb 4;7(4):2745-53. doi: 10.1021/am507826d. Epub 2015 Jan 23.
The rational design and fabrication of SnO2-based anode materials could offer a powerful way of effectively alleviating their large volume variation and guaranteeing excellent reaction kinetics for electrochemical lithium storage. Herein, we present an ultrarapid, low-cost, and simple microwave-assisted synthesis of ultrathin SnO2 nanosheets at the gram-scale. The two-dimensional (2D) anisotropic growth depends on microwave dielectric irradiation coupled with surfactant structural direction, and is conducted under low-temperature atmospheric conditions. The ultrathin 2D nanostructure holds a great surface tin atom percentage with high activity, where the electrochemical reaction processes could be facilitated that highly dependent on the surface. Compared with 1D SnO2 nanorods, the ultrathin SnO2 nanosheets exhibit remarkably improved electrochemical lithium storage properties with a high reversible capacity of 757.6 mAh g(-1) at a current density of 200 mA g(-1) up to 40 cycles as well as excellent rate capability and cycling stability. Specifically, the ultrathin 2D nanosheet could significantly reduce ion diffusion paths, thus allowing faster phase transitions, while the sufficient external surface interspace and interior porous configuration could successfully accommodate the huge volume changes. Even more importantly, we develop a promising strategy to produce ultrathin SnO2 nanosheets to tackle their intrinsic problems for commercial applications.
基于SnO₂的负极材料的合理设计与制备,可为有效缓解其巨大的体积变化及确保电化学锂存储优异的反应动力学提供有力途径。在此,我们展示了一种超快速、低成本且简便的微波辅助合成法,可在克级规模制备超薄SnO₂纳米片。二维(2D)各向异性生长依赖于微波介电辐射与表面活性剂结构方向的耦合,并在低温常压条件下进行。超薄二维纳米结构具有高活性的大表面锡原子百分比,在此处可促进高度依赖表面的电化学反应过程。与一维SnO₂纳米棒相比,超薄SnO₂纳米片展现出显著改善的电化学锂存储性能,在200 mA g⁻¹的电流密度下,高达40个循环的可逆容量为757.6 mAh g⁻¹,以及优异的倍率性能和循环稳定性。具体而言,超薄二维纳米片可显著缩短离子扩散路径,从而实现更快的相变,同时充足的外部表面间隙和内部多孔结构能够成功容纳巨大的体积变化。更重要的是,我们开发了一种有前景的策略来制备超薄SnO₂纳米片,以解决其在商业应用中的固有问题。