Laboratory of Advanced Materials and Department of Chemistry, iChEM (Collaborative Innovation Center of Chemistry for Energy Materials), Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Key Laboratory of Molecular Engineering of Polymers, Fudan University, Shanghai, China.
Nanoscale. 2017 Jan 26;9(4):1539-1546. doi: 10.1039/c6nr08885f.
Here, we report mesoporous TiO@N-doped carbon composite nanospheres synthesized via a double-surfactant-assisted assembly sol-gel process followed by sequential carbonization of surfactants under a N atmosphere. The resulting TiO@N-doped C composite nanospheres are composed of uniformly distributed TiO nanocrystals with a diameter of ∼8 nm coated by a N-doped carbon layer that was formed by surfactants. Moreover, a large number of connected mesopores were observed in the nanospheres after high-temperature carbonization treatment. The synthesized nanospheres possess a large specific surface area (∼120 m g) and a large pore size (4-40 nm), with a well-defined spherical structure and a diameter in the nanoscale range. As an anode material for lithium-ion batteries (LIB), the mesoporous composite nanospheres delivered a reversible capacity of ∼117 mA h g after 2000 cycles at a current rate as high as 10 C, as well as superior rate capability. The N-doped carbon layers greatly improved the overall electrical conductivity of the mesoporous TiO nanospheres. This study provides a remarkable synthetic route for the preparation of mesoporous TiO-based N-doped carbon composite materials as high-performance anode materials in LIBs.
在这里,我们报告了通过双表面活性剂辅助组装溶胶-凝胶过程合成的介孔 TiO@N 掺杂碳复合纳米球,然后在 N 气氛下依次对表面活性剂进行碳化。所得的 TiO@N 掺杂 C 复合纳米球由均匀分布的 TiO 纳米晶组成,直径约为 8nm,由表面活性剂形成的 N 掺杂碳层包覆。此外,在高温碳化处理后,纳米球中观察到大量的连通介孔。合成的纳米球具有大的比表面积(约 120m²/g)和大的孔径(4-40nm),具有良好的球形结构和纳米级的直径。作为锂离子电池(LIB)的阳极材料,介孔复合纳米球在高达 10C 的电流速率下循环 2000 次后,可逆容量约为 117mA h/g,具有优异的倍率性能。N 掺杂碳层极大地提高了介孔 TiO 纳米球的整体电导率。这项研究为制备高性能 LIB 用介孔 TiO 基 N 掺杂碳复合材料提供了一种显著的合成途径。