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A green and facile way to prepare granadilla-like silicon-based anode materials for li-ion batteries

机译:一种绿色便捷的方法来制备锂离子电池的类似金迪拿的硅基负极材料

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摘要

A yolk-shell-structured carbon@void@silicon (CVS) anode material in which a void space is created between the inside silicon nanoparticle and the outer carbon shell is considered as a promising candidate for Li-ion cells. Untill now, all the previous yolk-shell composites were fabricated through a templating method, wherein the SiO2 layer acts as a sacrificial layer and creates a void by a selective etching method using toxic hydrofluoric acid. However, this method is complex and toxic. Here, a green and facile synthesis of granadilla-like outer carbon coating encapsulated silicon/carbon microspheres which are composed of interconnected carbon framework supported CVS nanobeads is reported. The silicon granadillas are prepared via a modified templating method in which calcium carbonate was selected as a sacrificial layer and acetylene as a carbon precursor. Therefore, the void space inside and among these CVS nanobeads can be formed by removing CaCO3 with diluted hydrochloric acid. As prepared, silicon granadillas having 30% silicon content deliver a reversible capacity of around 1100 mAh g−1 at a current density of 250 mA g−1 after 200 cycles. Besides, this composite exhibits an excellent rate performance of about 830 and 700 mAh g−1 at the current densities of 1000 and 2000 mA g−1, respectively.
机译:卵黄壳结构的碳@空隙@硅(CVS)阳极材料(在内部硅纳米颗粒和外部碳壳之间形成空隙)被认为是锂离子电池的有前途的候选材料。直到现在,所有以前的卵黄-壳复合材料都是通过模板方法制造的,其中SiO2层是牺牲层,并通过使用有毒氢氟酸的选择性蚀刻方法产生空隙。但是,该方法复杂且有毒。在此,报道了绿色且容易合成的类西葫芦状外部碳涂层封装的硅/碳微球,该硅/碳微球由互连的碳骨架支撑的CVS纳米珠组成。通过改进的模板方法制备硅西洋果,其中选择碳酸钙作为牺牲层,并选择乙炔作为碳前体。因此,可以通过用稀盐酸除去CaCO 3来形成这些CVS纳米珠内部和之间的空隙。制备后,硅含量为30%的硅西洋参在200次循环后在250 mA g-1的电流密度下可提供约1100 mAh g-1的可逆容量。此外,该复合材料在电流密度分别为1000和2000 mA g-1时分别具有约830和700 mAh g-1的优异速率性能。

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