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Synthesis of binder-like molecules covalently linked to silicon nanoparticles and application as anode material for lithium-ion batteries without the use of electrolyte additives

机译:共价键合到硅纳米粒子的粘合剂样分子的合成及其在不使用电解质添加剂的情况下作为锂离子电池负极材料的应用

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摘要

A chemically modified silicon anode is prepared for application as anode in lithium-ion batteries by covalent attachment of polyacrylic acid to enable self-adhesion between the active material particles. The polyacrylic acid polymer is formed by atom transfer radical polymerization using 1-(bromoethyl)benzene initiator groups initially bonded to a hydrogenated silicon surface. The grafting of 1-(bromoethyl)benzene and polyacrylic acid is confirmed by various material characterization techniques. The electro-chemical performance of the silicon anodes is also evaluated by galvanostatic cycling. The chemically modified composite silicon anode (with active material loading of 0.9-1 mg cm(-2)) showed a significantly improved performance in terms of: gravimetric capacitance (more than 2000 mAh g(-1)) after 300 cycles and 80% capacity retention with an average 99.6% Coulombic efficiency at a current density of 0.34 A g(-1). However, the unmodified electrode cycled 75 times in the same conditions only retains 46% of its initial capacity with an average 95.1% Coulombic efficiency. The new composite Si electrode performs better at high charge/discharge rate and allows the use of larger proportion of the active material by reducing the amount of binder. It is noteworthy that these composite silicon electrodes are tested without the use of expensive electrolyte additives. (C) 2017 Elsevier B.V. All rights reserved.
机译:通过共价键合聚丙烯酸以使活性材料颗粒之间实现自粘,可以制备出化学改性的硅阳极,以用作锂离子电池的阳极。聚丙烯酸聚合物是通过使用最初键合到氢化硅表面的1-(溴乙基)苯引发剂基团通过原子转移自由基聚合形成的。 1-(溴乙基)苯与聚丙烯酸的接枝通过各种材料表征技术得到证实。硅阳极的电化学性能也通过恒电流循环进行评估。经过化学改性的复合硅阳极(活性材料负载为0.9-1 mg cm(-2))在以下方面表现出显着改善的性能:重量电容(大于2000 mAh g(-1))经过300次循环和80%容量保持率,电流密度为0.34 A g(-1)时,平均库仑效率为99.6%。但是,在相同条件下循环75次的未修饰电极仅保留其初始容量的46%,平均库仑效率为95.1%。新型复合Si电极在高充电/放电速率下表现更好,并通过减少粘合剂的用量而允许使用更大比例的活性材料。值得注意的是,在不使用昂贵的电解质添加剂的情况下测试了这些复合硅电极。 (C)2017 Elsevier B.V.保留所有权利。

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