项目名称: SiOx-Si/graphene/Si-SiOx锂离子电池负极材料的纳米结构构筑及其储锂行为
项目编号: No.51472086
项目类型: 面上项目
立项/批准年度: 2015
项目学科: 一般工业技术
项目作者: 詹亮
作者单位: 华东理工大学
项目金额: 80万元
中文摘要: 针对Si在脱嵌锂过程中较大的体积变化率及低的电导率导致的超高容量不能有效利用和大电流倍率性能差的核心问题,本课题拟构筑一种三明治式二维多孔纳米结构的SiOx-Si/graphene/Si-SiOx负极材料加以解决。首先,基于分子间的电吸附和分子自组装原理以及Si与Mg、H2O之间的还原、氧化反应机理,控制该纳米复合材料的纳米结构和化学性质。其次,利用该材料二维纳米结构的柔性特性和丰富的纳米孔道以及SiOx能与电解液形成稳定SEI膜的特点,协同解决Si因在充放电过程中的粉化失效而导致的容量衰减问题;并利用石墨烯优异的导电性及其导电网络结构以及Si纳米膜超薄的二维多孔纳米结构,弥补Si电导率低的劣势以提高其大电流倍率性能。本课题拟在实现SiOx-Si/graphene/Si-SiOx材料可控制备的基础上,阐明该负极材料的三明治结构形成机理、纳米结构的控制机制及其储锂行为等基础科学问题。
中文关键词: 锂离子电池;硅基负极材料;纳米结构;纳米复合材料;石墨烯
英文摘要: The main challenges for the practical implementation of Si anodes are the huge volume variation during lithiation and delithiation processes and low electronic conductivity, resulting in pulverization, low cycling efficiency and poor rate capability. Therefore, a novel 2-dimentional, sandwich-like and porous nanostructured SiOx-Si/graphene/Si-SiOx nanocomposite will be designed and synthesized for high energy density of lithium-ion batteries. The nanostructure and chemical characteristics of SiOx-Si/graphene/Si-SiOx nanocomposite will be controlled combined with the electrosorption of cetyltrimethylammonium bromide (CTAB) on the surface of graphene oxide, the molecular self-assemble mechanism of CTAB with tetraethoxysilane (TEOS), and the reduction/oxidation reaction mechanisms of Si with Mg and H2O. Moreover, the huge volume variation of Si during lithiation and delithiation processes will be solved by the flexible characteristics of 2-dimentional and porous nanostructures. Additionally, stable surface electrolyte interface (SEI)films can be formed on the surface of SiOx, which is beneficial to improve the cycling stability of Si anode. Importantly, the inartificial conductive network of graphene bonded with Si nanofilm with large contact area can cover the shortage of Si with low electronic conductivity. Meanwhile, the unique nanostructure of Si nanofilm with 2-dimentional and porous structure can slso assist a fast lithium diffusion and electron transport during the cycle charging-discharging processes, giving high rate capacities. Except for the controllable synthesis of SiOx-Si/graphene/Si-SiOx nanocomposite, the corresponding fundamental sciences will be elucidated, especially, the forming mechanism of sandwich-like nanostructure for Si/graphene/Si anode. And then the effect mechanism of nanostructures of SiOx-Si/graphene/Si-SiOx nanocomposite on its electrochemical performance will be explored.
英文关键词: Lithium ion battery;Silicon based anode materials;Nanostructure;Nanocomposite;Graphene