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Improved lithium storage capacity and high rate capability of nitrogen-doped graphite-like electrode materials prepared from thermal pyrolysis of graphene quantum dots

机译:改进了由石墨烯量子点的热热解制的氮掺杂石墨电极材料的锂储存容量和高速率能力

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Adopting a solid-phase microwave-assisted technique followed by thermal pyrolysis of N-functionalized graphene quantum dots, novel nitrogen-doped graphite-like (NGL) electrode materials were synthesized and served as the anode for Li-ion batteries. The NGL anode demonstrated reversible capacity of 530 mAh g(-1) at 0.1C, superior rate capability at high C rate operation (420 mAh g(-1) at 5C), remarkable initial coulombic efficiency (>95.7%), and excellent cyclic stability along with high efficiency (>99.1%) during entire cycling. The NGL anode nanostructure enables improved lithium ion mobility and reversible Li+ storage during cycling. The analysis of the Ragone plots revealed that the specific energy of NGL anode reaches to ca. 840 Wh kg(-1) at the power density of 4200 W kg(-1). The diffusion coefficient of Li ions was measured as 1.69 x 10(-9) cm(2) s(-1) for the NGL anode material, substantially improving over commonly used graphite electrodes (15-26 times higher Li+ diffusivity). The high-rate cyclability as well as the cyclic stability of the NGL anodes were also confirmed via long-term cycling of full pouch cells assembled with ternary cathode and NGL anode. The robust design of the NGL anode materials introduced in this work, paves the way for designing next-generation lithium-ion batteries operating at ultrahigh C rates. (C) 2020 Elsevier Ltd. All rights reserved.
机译:采用固相微波辅助技术,随后加入N-官能化石墨烯量子点的热解,新颖氮掺杂的类石墨(NGL)的电极材料的合成和作为阳极为锂离子电池。的530毫安克(-1)以0.1C的NGL阳极表现出可逆容量,在高C速率操作优异的倍率性能(420毫安克(-1)在5℃),显着的初始库仑效率(> 95.7%),以及优异的与整个循环过程中高效率(> 99.1%)沿着循环稳定性。 NGL的阳极纳米结构使得在循环期间改进的锂离子迁移率和可逆的Li +贮存。该曲线的Ragone的分析表明,NGL阳极达到约的比能840瓦公斤(-1)以4200公斤w ^的功率密度(-1)。 Li离子的扩散系数测定为1.69×10(-9)厘米(2)S(-1)用于NGL阳极材料,基本上改善对常用的石墨电极(15-26倍更高的Li +扩散率)。高速率循环性能以及在NGL阳极的循环稳定性通过与三元阴极和阳极NGL组装充满小袋细胞的长期循环也证实。在这项工作中引入的NGL阳极材料的稳健设计,铺平用于设计在超高C速率操作的新一代锂离子电池的方法。 (c)2020 elestvier有限公司保留所有权利。

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