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Significantly enhanced electrochemical performance of lithium titanate anode for lithium ion battery by the hybrid of nitrogen and sulfur co-doped graphene quantum dots

机译:氮硫共掺杂石墨烯量子点的杂化显着提高锂离子电池钛酸锂阳极的电化学性能

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The paper reported a facile synthesis of lithium titanatenitrogen and sulfur co-doped graphene quantum dots(LTO/N,S-GQDs). Tetrabutyl titanate was dissolved in tertbutanol and heated to refluxing state by microwave irradiation. Then, lithium acetate was added into the mixed solution to produce LTO precursor. The precursor was hybridized with N,S-GQDs in ethanol. Followed by drying and thermal annealing at 500 degrees C in Ar/H-2 to obtain LTO/N,S-GQDs. The synthesis creates fully crystalline interconnected porous framework composed of nanoscale LTO crystals. The unique architecture achieves to maximize the high-rate performance and enhance the power density. More importantly, the introduction of N,S-GQDs don't almost influence on the electrolyte transport, but greatly improve the electron transfer and the storage lithium capacity. The LTO/N,S-GQDs anode exhibits remarkably enhanced electrochemical performance for lithium ion battery. The specific discharge capacity is 254.2 mAh g(-1) at 0.1C and 126.5 mAh g(-1) at 10C. The capacity remains 96.9% at least after 2000 cycles at 2C. The battery performance is significantly better than that of pure LTO electrode and LTO/graphene electrode. (C) 2015 Elsevier Ltd. All rights reserved.
机译:该论文报道了钛酸锂氮和硫共掺杂石墨烯量子点(LTO / N,S-GQDs)的简便合成。将钛酸四丁酯溶解在叔丁醇中,并通过微波辐射加热至回流状态。然后,将乙酸锂添加到混合溶液中以产生LTO前体。该前体与N,S-GQD在乙醇中杂交。随后在Ar / H-2中在500摄氏度下干燥和热退火,以获得LTO / N,S-GQDs。该合成产生了由纳米级LTO晶体组成的全晶体互连多孔骨架。独特的架构可实现最大化的高速率性能并增强功率密度。更重要的是,引入N,S-GQD几乎不会影响电解质的传输,但会大大提高电子转移和锂存储容量。 LTO / N,S-GQDs阳极对锂离子电池表现出显着增强的电化学性能。比放电容量在0.1C下为254.2 mAh g(-1),在10C下为126.5 mAh g(-1)。至少在2C下经过2000次循环后,容量仍保持96.9%。电池性能明显优于纯LTO电极和LTO /石墨烯电极。 (C)2015 Elsevier Ltd.保留所有权利。

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