Autthawong Thanapat, Chimupala Yothin, Haruta Mitsutaka, Kurata Hiroki, Kiyomura Tsutomu, Yu Ai-Shui, Chairuangsri Torranin, Sarakonsri Thapanee
Department of Chemistry, Faculty of Science, Chiang Mai University Muang Chiang Mai 50200 Thailand
Department of Industrial Chemistry, Faculty of Science, Chiang Mai University Muang Chiang Mai 50200 Thailand.
RSC Adv. 2020 Dec 8;10(71):43811-43824. doi: 10.1039/d0ra07733j. eCollection 2020 Nov 27.
Emerging technologies demand a new generation of lithium-ion batteries that are high in power density, fast-charging, safe to use, and have long cycle lives. This work reports charging rates and specific capacities of TiO(B)/N-doped graphene (TNG) composites. The TNG composites were prepared by the hydrothermal method in various reaction times (3, 6, 9, 12, and 24 h), while the N-doped graphene was synthesized using the modified Hummer's method followed by a heat-treatment process. The different morphologies of TiO dispersed on the N-doped graphene sheet were confirmed as anatase-nanoparticles (3, 6 h), TiO(B)-nanotubes (9 h), and TiO(B)-nanorods (12, 24 h) by XRD, TEM, and EELS. In electrochemical studies, the best battery performance was obtained with the nanorods TiO(B)/N-doped graphene (TNG-24h) electrode, with a relatively high specific capacity of 500 mA h g at 1C (539.5 mA g). In long-term cycling, excellent stability was observed. The capacity retention of 150 mA h g was observed after 7000 cycles, at an ultrahigh current of 50C (27.0 A g). The synthesized composites have the potential for fast-charging and have high stability, showing potential as an anode material in advanced power batteries for next-generation applications.
新兴技术需要新一代高功率密度、快速充电、使用安全且循环寿命长的锂离子电池。这项工作报告了TiO(B)/N掺杂石墨烯(TNG)复合材料的充电速率和比容量。TNG复合材料通过水热法在不同反应时间(3、6、9、12和24小时)制备,而N掺杂石墨烯则采用改进的Hummer法合成,随后进行热处理。通过XRD、TEM和EELS证实,分散在N掺杂石墨烯片上的TiO呈现出不同的形态,分别为锐钛矿纳米颗粒(3、6小时)、TiO(B)纳米管(9小时)和TiO(B)纳米棒(12、24小时)。在电化学研究中,纳米棒TiO(B)/N掺杂石墨烯(TNG-24h)电极表现出最佳的电池性能,在1C(539.5 mA g)时具有相对较高的比容量500 mA h g。在长期循环中,观察到了优异的稳定性。在50C(27.0 A g)的超高电流下,7000次循环后容量保持率为150 mA h g。合成的复合材料具有快速充电的潜力且稳定性高,显示出作为下一代先进动力电池负极材料的潜力。