Ogihara Takashi, Kodera Takayuki
Graduate School of Material Science and Engineering, University of Fukui, 3-9-1 Bunkyo, Fukui 910-8507, Japan.
Materials (Basel). 2013 Jun 3;6(6):2285-2294. doi: 10.3390/ma6062285.
Ramsdellite-type lithium titanate (Li₂Ti₃O₇) powders were synthesized by performing ultrasonic spray pyrolysis, and their chemical and physical properties were characterized by performing Scanning Electron Microscope (SEM), powder X-ray Diffraction (XRD), and Inductively Coupled Plasma (ICP) analyses. The as-prepared Li₂Ti₃O₇ precursor powders had spherical morphologies with hollow microstructures, but an irregularly shaped morphology was obtained after calcination above 900 °C. The ramsdellite Li₂Ti₃O₇ crystal phase was obtained after the calcination at 1100 °C under an argon/hydrogen atmosphere. The first rechargeable capacity of the Li₂Ti₃O₇ anode material was 168 mAh/g at 0.1 C and 82 mAh/g at 20 C, and the discharge capacity retention ratio was 99% at 1 C after the 500th cycle. The cycle performance of the Li₂Ti₃O₇ anode was also highly stable at 50 °C, demonstrating the superiority of Li₂Ti₃O₇ anode materials reported previously.
通过超声喷雾热解合成了斜方钛铁矿型钛酸锂(Li₂Ti₃O₇)粉末,并通过扫描电子显微镜(SEM)、粉末X射线衍射(XRD)和电感耦合等离子体(ICP)分析对其化学和物理性质进行了表征。所制备的Li₂Ti₃O₇前驱体粉末具有空心微结构的球形形态,但在900℃以上煅烧后获得了不规则形状的形态。在氩气/氢气气氛下于1100℃煅烧后获得了斜方钛铁矿Li₂Ti₃O₇晶相。Li₂Ti₃O₇负极材料的首次充电容量在0.1 C时为168 mAh/g,在20 C时为82 mAh/g,在第500次循环后,1 C时的放电容量保持率为99%。Li₂Ti₃O₇负极在50℃时的循环性能也非常稳定,证明了先前报道的Li₂Ti₃O₇负极材料的优越性。