Department of Chemistry, Merkert Chemistry Center, Boston College, 2609 Beacon Street, Chestnut Hill, Massachusetts 02467, USA.
Nano Lett. 2010 Mar 10;10(3):860-3. doi: 10.1021/nl903345f.
We synthesized a unique heteronanostructure consisting of two-dimensional TiSi(2) nanonets and particulate Si coating. The high conductivity and the structural integrity of the TiSi(2) nanonet core were proven as great merits to permit reproducible Li(+) insertion and extraction into and from the Si coating. This heteronanostructure was tested as the anode material for Li(+) storage. At a charge/discharge rate of 8400 mA/g, we measured specific capacities >1000 mAh/g. Only an average of 0.1% capacity fade per cycle was observed between the 20th and the 100th cycles. The combined high capacity, long capacity life, and fast charge/discharge rate represent one of the best anode materials that have been reported. The remarkable performance was enabled by the capability to preserve the crystalline TiSi2 core during the charge/discharge process. This achievement demonstrates the potency of this novel heteronanostructure design as an electrode material for energy storage.
我们合成了一种独特的异质纳米结构,由二维 TiSi(2) 纳米网和颗粒状 Si 涂层组成。TiSi(2) 纳米网核心的高导电性和结构完整性被证明是很大的优点,允许 Si 涂层重复进行锂离子的插入和提取。这种异质纳米结构被用作锂离子存储的阳极材料。在 8400 mA/g 的充放电速率下,我们测量到的比容量超过 1000 mAh/g。在第 20 次和第 100 次循环之间,仅观察到平均 0.1%的容量衰减。这种结合了高容量、长容量寿命和快速充放电率的性能是目前报道的最好的阳极材料之一。这种优异的性能得益于在充放电过程中保持结晶 TiSi2 核心的能力。这一成就证明了这种新型异质纳米结构设计作为储能电极材料的潜力。