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首页> 外文期刊>Journal of power sources >Three-dimensional architecture of lithium-anodes made from graphite fibers coated with thin-films of silicon oxycarbide: Design, performance and manufacturability
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Three-dimensional architecture of lithium-anodes made from graphite fibers coated with thin-films of silicon oxycarbide: Design, performance and manufacturability

机译:由涂有碳氧化硅薄膜的石墨纤维制成的锂阳极的三维结构:设计,性能和可制造性

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Silicon oxycarbide (SiCO) is an amorphous molecular network of Si-C-O tetrahedra anchored to graphene-like carbon. The graphene forms a three dimensional cellular network with a domain size of similar to 5 nm. Therefore nanometer thick films of SiCO grown on graphite may be expected to have unusual behavior. We grow these films on a bed of commercially available graphite fibers that serve the dual function of a current collector. The electrochemical behavior of the composite is measured as a function of the thickness of the SiCO films. Thick films approach the typical behavior of bulk SiCO (which has three times the capacity of graphite, but suffers from poor first cycle efficiency). However, films, approximately 100 nm thick, show high first cycle efficiency as well as high capacity. The composite performs better than the prediction from the rule-of-mixtures, which further substantiates the unusual behavior of the thin-film architecture. The Raman spectra of these thin films also differ from bulk SiCO. The development of thin graphite fibers, with a high surface to volume ratio that have the same capacity as the current graphite-powder technology, coupled with manufacturing of these thin-films by a liquid-polymer precursor based process, can propel these results toward commercialization. (C) 2016 Elsevier B.V. All rights reserved.
机译:碳氧化硅(SiCO)是锚定在类石墨碳上的Si-C-O四面体的无定形分子网络。石墨烯形成三维蜂窝网络,其域大小类似于5 nm。因此,可以预期在石墨上生长的纳米厚的SiCO膜具有不同寻常的行为。我们在具有集流体双重功能的市售石墨纤维床上生长这些薄膜。根据SiCO膜的厚度来测量复合材料的电化学行为。厚膜接近块状SiCO的典型行为(块状SiCO的容量是石墨的三倍,但第一次循环效率很低)。但是,大约100纳米厚的薄膜显示出高的第一循环效率以及高容量。复合材料的性能优于混合法则的预测,这进一步证实了薄膜体系结构的异常行为。这些薄膜的拉曼光谱也不同于块状SiCO。具有高的表面体积比的薄石墨纤维的开发与当前的石墨粉技术具有相同的容量,再加上通过基于液体聚合物前体的工艺制造这些薄膜,可以将这些结果推向商业化。 (C)2016 Elsevier B.V.保留所有权利。

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