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Surface Oxidation of Nano-Silicon as a Method for Cycle Life Enhancement of Li-ion Active Materials

机译:纳米硅表面氧化作为锂离子活性材料循环寿命增强的方法

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摘要

Among the many studied Li-ion active materials, silicon presents the highest specific capacity, however it suffers from a great volume change during lithiation. In this work, we present two methods for the chemical modification of silicon nanoparticles. Both methods change the materials’ electrochemical characteristics. The combined XPS and SEM results show that the properties of the generated silicon oxide layer depend on the modification procedure employed. Electrochemical characterization reveals that the formed oxide layers show different susceptibility to electro-reduction during the first lithiation. The single step oxidation procedure resulted in a thin and very stable oxide that acts as an artificial SEI layer during electrode operation. The removal of the native oxide prior to further reactions resulted in a very thick oxide layer formation. The created oxide layers (both thin and thick) greatly suppress the effect of silicon volume changes, which significantly reduces electrode degradation during cycling. Both modification techniques are relatively straightforward and scalable to an industrial level. The proposed modified materials reveal great applicability prospects in next generation Li-ion batteries due to their high specific capacity and remarkable cycling stability.
机译:在许多研究的锂离子活性材料中,硅呈现出最高的特定容量,然而它在锂化过程中遭受了很大的体积变化。在这项工作中,我们提出了两种用于硅纳米颗粒的化学改性的方法。两种方法都改变了材料的电化学特性。组合的XPS和SEM结果表明,所产生的氧化硅层的性质取决于所采用的修改过程。电化学表征揭示了形成的氧化物层在第一锂化期间显示出对电力减少的不同敏感性。单步氧化过程导致薄且非常稳定的氧化物,其在电极操作期间用作人造SEI层。在进一步反应之前去除天然氧化物导致非常厚的氧化物层形成。产生的氧化物层(薄且厚)大大抑制了硅体积变化的效果,这显着降低了循环期间的电极降解。修改技术均相对简单,可扩展到工业水平。所提出的改性材料由于其高特定容量和显着的循环稳定性,揭示了下一代锂离子电池的良好适用性前景。

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