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A facile and functional process to enhance electrochemical performance of silicon anode in lithium ion batteries

机译:一种提高锂离子电池中硅阳极电化学性能的实用功能方法

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Silicon is a promising anode active material for lithium ion batteries due to improvements to overcome the volume expansion problem and preserve the electrode structural integrity during the lithiation and delithiation processes. Significant studies have been performed to overcome this problem and make silicon available for commercial applications. In this study, we developed a facile and functional method to demonstrate the possibility of widespread usage of silicon anode. Here, two methods were investigated; neutralization of poly(acrylic) acid (PAA) and calendering process during electrode production. PAA without neutralization is commonly used in silicon based anodes. Calendering is a typical process for cathode preparation. However, it is not generally utilized for making silicon anodes. This study aims to show the effect of PAA neutralization and anode calendering on the electrochemical performance of cells in comparison to anodes prepared by conventional processes. Furthermore, a high mass loading is a critical step for the use of Si anode commercially. The electrode was successfully loaded in this study as 1 mg/cm(2). Electrochemical performance measurements showed that 1370 mAh/g specific capacity was achieved after neutralization of PAA and calendering of the electrode at the 100th cycle. Meanwhile, the calendered electrode prepared with PAA polymer showed a specific capacity of 511 mAh/g after 100 cycles. Traditionally, graphite is used as anode material in commercial batteries and theoretical specific capacity is 372 mAh/g. Our observations with quite high specific capacity achieved by the process applied in this study show an important promise for the use of silicon based anode materials in the future utilization of Li ion batteries. (C) 2016 Elsevier Ltd. All rights reserved.
机译:硅是一种有望用于锂离子电池的负极活性材料,这是由于其在锂化和脱锂过程中克服了体积膨胀问题并保持了电极结构完整性的改进。为了克服该问题并使硅可用于商业应用,已经进行了重要的研究。在这项研究中,我们开发了一种简便实用的方法来证明广泛使用硅阳极的可能性。在这里,研究了两种方法。电极生产过程中中和聚丙烯酸(PAA)和压延过程。不中和的PAA通常用于硅基阳极。压延是阴极制备的典型方法。但是,通常不用于制造硅阳极。这项研究旨在显示与传统方法制备的阳极相比,PAA中和和阳极压延对电池电化学性能的影响。此外,对于在商业上使用Si阳极而言,高质量负载是关键步骤。该电极在本研究中成功加载为1 mg / cm(2)。电化学性能测量表明,在第100次循环中和PAA和压延电极后,比容量达到1370 mAh / g。同时,用PAA聚合物制备的压延电极在100次循环后显示出511 mAh / g的比容量。传统上,石墨用作商业电池的负极材料,理论比容量为372 mAh / g。我们通过这项研究中使用的方法获得的具有相当高比容量的观察结果表明,在未来锂离子电池的使用中,使用硅基负极材料具有重要的前景。 (C)2016 Elsevier Ltd.保留所有权利。

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