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自发交联法制备嵌入尺寸可控粒子的纳米杂化材料。

Spontaneous Cross-linking for Fabrication of Nanohybrids Embedded with Size-Controllable Particles.

机构信息

State Key Laboratory of Metal Matrix Composites, Shanghai Jiao Tong University , 800 Dongchuan Road, Shanghai 200240, P. R. China.

出版信息

ACS Nano. 2016 Jan 26;10(1):889-98. doi: 10.1021/acsnano.5b06022. Epub 2015 Dec 11.

Abstract

This paper reports a versatile method to fabricate robust carbon/metal hybrids with ultrasmall particle and highly developed porous structure through a scalable and facile way. Alginate is used as the precursor for it could perform cross-linking reaction with different polyvalent metal ions to form gels. After simple freeze-drying and carbonization of the alginate-derived gels, we obtained the carbon/metal hybrids with fine nanostructure. Eleven kinds of metal ions were introduced to form gels and five kinds of the gels were carbonized to produce the carbon/metal hybrids. By adjusting the reaction condition, we could tune the size of the nanoparticles in the obtained hybrids. The obtained SnO2/C hybrid shows outstanding specific capacity, rate performance, and long cycle life when it is used as the anode materials of lithium ion batteries. The ultrasmall active nanoparticles were uniformly dispersed within an interconnected pore framework. It ensured a short diffusion and transportation distance of electrolyte ions to the surfaces of active nanoparticles. In addition, the robust carbon framework comprises of quasigraphitic carbon layers. It contributed to the high rate performance by providing excellent conductive pathways for electrons within the electrodes. This work provides a general method for fabrication of carbon/metal (oxide) hybrids with fine nanostructure for application in energy storage.

摘要

本文报道了一种通过可扩展且简便的方法制备具有超小颗粒和高度发达的多孔结构的坚固碳/金属杂化物的通用方法。海藻酸盐可用作前体,因为它可以与不同的多价金属离子发生交联反应形成凝胶。海藻酸盐衍生的凝胶经过简单的冷冻干燥和碳化后,我们获得了具有精细纳米结构的碳/金属杂化物。引入了 11 种金属离子来形成凝胶,然后碳化了 5 种凝胶来制备碳/金属杂化物。通过调整反应条件,我们可以调节所得杂化物中纳米颗粒的尺寸。当 SnO2/C 杂化物用作锂离子电池的阳极材料时,它表现出出色的比容量、倍率性能和长循环寿命。超小的活性纳米颗粒均匀分散在相互连接的孔结构内。这确保了电解质离子在活性纳米颗粒表面的短扩散和传输距离。此外,坚固的碳骨架由类石墨碳层组成。它通过在电极内为电子提供优异的导电途径,有助于实现高倍率性能。这项工作为制备具有精细纳米结构的用于储能的碳/金属(氧化物)杂化物提供了一种通用方法。

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