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硅化钛纳米网:先进锂离子电池应用的新型材料平台。

Titanium silicide nanonet as a new material platform for advanced lithium ion battery applications.

机构信息

Department of Chemistry, Merkert Chemistry Center, Chestnut Hill, Massachusetts 02467, USA.

出版信息

Chem Commun (Camb). 2013 Jul 25;49(58):6470-6. doi: 10.1039/c3cc41704b. Epub 2013 Jun 12.

Abstract

Compared with competing technologies, rechargeable lithium ion batteries offer relative advantages such as high capacity and long cycle lifetime. Remarkable advances in the development of this technology notwithstanding significant performance improvements are still required to meet society's ever-growing electrical energy storage need. In particular, we long for devices with greater capacity, a higher power rate and a longer cycle lifetime. Aimed at solving challenges associated with poor charge transport within electrode materials, we have recently tested a new, nanonet-based material platform. The nanonet, made of TiSi2 (C49), is similar to the more commonly used porous carbon in that it has high surface area and good electrical conductivity. The key uniqueness of the nanonet lies in that its morphology is well-defined, permitting us to design and test various heteronanostructures. In essence, the TiSi2 nanonet can serve as a charge collector and a mechanical support for the construction of electrodes for a wide range of applications. We show that when combined with Si, an anode with superior performance is obtained. Similarly, a high-performance cathode is enabled by the TiSi2-V2O5 combination.

摘要

与竞争技术相比,可充电锂离子电池具有高容量和长循环寿命等相对优势。尽管在这项技术的发展方面取得了显著的进步,但仍需要显著提高性能,以满足社会对不断增长的电能存储的需求。特别是,我们渴望拥有更高容量、更高功率率和更长循环寿命的设备。为了解决与电极材料内电荷输运不良相关的挑战,我们最近测试了一种新的基于纳米网络的材料平台。纳米网络由 TiSi2(C49)制成,与更常用的多孔碳类似,具有高表面积和良好的导电性。纳米网络的关键独特之处在于其形态得到了很好的定义,这使我们能够设计和测试各种异质纳米结构。本质上,TiSi2 纳米网络可以作为电极构建的电荷收集器和机械支撑,适用于广泛的应用。我们表明,当与 Si 结合时,得到了具有优异性能的阳极。同样,TiSi2-V2O5 的组合也实现了高性能阴极。

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