Energy Material Lab, Material Research Center, Samsung Advanced Institute of Technology, Samsung Electronics Co. Ltd., 130 Samsung-ro, Yeongtong-gu, Suwon-si, Gyeonggi-do, 443-803, Republic of Korea.
School of Urban, Architecture and Civil Engineering, Pusan National University, 2, Busandaehang-ro 63 beon-gil, Geumjeong-gu, Busan, 46241, Republic of Korea.
Small. 2016 Feb 3;12(5):658-67. doi: 10.1002/smll.201502880. Epub 2015 Dec 14.
Understanding the growth of graphene over Si species is becoming ever more important as the huge potential for the combination of these two materials becomes more apparent, not only for device fabrication but also in energy applications, particularly in Li-ion batteries. Thus, the drive for the direct fabrication of graphene over Si is crucial because indirect approaches, by their very nature, require processing steps that, in general, contaminate, damage, and are costly. In this work, the direct chemical vapor deposition growth of few-layer graphene over Si nanoparticles is systematically explored through experiment and theory with the use of a reducer, H2 or the use of a mild oxidant, CO2 combined with CH4 . Unlike the case of CH4 , with the use of CO2 as a mild oxidant in the reaction, the graphene layers form neatly over the surface and encapsulate the Si particles. SiC formation is also prevented. These structures show exceptionally good electrochemical performance as high capacity anodes for lithium-ion batteries. Density functional theory studies show the presence of CO2 not only prevents SiC formation but helps enhance the catalytic activity of the particles by maintaining an SiOx surface. In addition, CO2 can enhance graphitization.
随着这两种材料结合的巨大潜力变得越来越明显,理解石墨烯在硅物种上的生长变得越来越重要,不仅在器件制造方面,而且在能源应用方面,特别是在锂离子电池中。因此,直接在硅上制备石墨烯的驱动力至关重要,因为间接方法从本质上讲需要处理步骤,这些步骤通常会污染、损坏并增加成本。在这项工作中,通过实验和理论系统地研究了使用还原剂 H2 或使用温和氧化剂 CO2 与 CH4 直接化学气相沉积生长硅纳米颗粒上的少层石墨烯。与使用 CH4 的情况不同,在反应中使用 CO2 作为温和氧化剂时,石墨烯层整齐地形成在表面上并包裹硅颗粒。还防止了碳化硅的形成。这些结构表现出作为锂离子电池高容量阳极的优异电化学性能。密度泛函理论研究表明,CO2 的存在不仅可以防止 SiC 的形成,而且通过保持 SiOx 表面来帮助提高颗粒的催化活性。此外,CO2 可以促进石墨化。