State Key Laboratory of Powder Metallurgy, Central South University , Changsha, Hunan 410083, People's Republic of China.
Department of Chemical & Materials Engineering, University of Alberta , Edmonton, Alberta T6G 1H9, Canada.
ACS Appl Mater Interfaces. 2018 Feb 21;10(7):6309-6316. doi: 10.1021/acsami.7b17587. Epub 2018 Feb 12.
LiMnSiO has attracted significant attention as a cathode material for lithium ion batteries because of its high theoretical capacity (330 mA h g with two Li ions per formula unit), low cost, and environmentally friendly nature. However, its intrinsically poor Li diffusion, low electronic conductivity, and structural instability preclude its use in practical applications. Herein, elongated hexagonal prism-shaped LiMnSiO nanoplates with preferentially exposed {001} and {210} facets have been successfully synthesized via a solvothermal method. Density functional theory calculations and experimental characterization reveal that the formation mechanism involves the decomposition of solid precursors to nanosheets, self-assembly into nanoplates, and Ostwald ripening. Hydroxyl-containing solvents such as ethylene glycol and diethylene glycol play a crucial role as capping agents in tuning the preferential growth. LiMnSiO@C nanoplates demonstrate a near theoretical discharge capacity of 326.7 mA h g at 0.05 C (1 C = 160 mA h g), superior rate capability, and good cycling stability. The enhanced electrochemical performance is ascribed to the electrochemically active {001} and {210} exposed facets, which provide short and fast Li diffusion pathways along the [001] and [100] axes, a conformal carbon nanocoating, and a nanoscaled platelike structure, which offers a large electrode/electrolyte contact interface for Li extraction/insertion processes.
LiMnSiO 作为锂离子电池的正极材料引起了人们的广泛关注,因为其具有高的理论容量(每个分子式单位有两个 Li 离子时为 330 mA h g)、低成本和环保的特性。然而,其内在的 Li 扩散性差、电子电导率低和结构不稳定性限制了其在实际应用中的使用。在此,通过溶剂热法成功地合成了具有优先暴露的 {001} 和 {210} 面的长六角形棱柱形 LiMnSiO 纳米片。密度泛函理论计算和实验表征揭示,其形成机制涉及固体前体的分解成纳米片、自组装成纳米片和奥斯特瓦尔德熟化。含有羟基的溶剂,如乙二醇和二乙二醇,作为封端剂在调控优先生长方面起着至关重要的作用。LiMnSiO@C 纳米片在 0.05 C(1 C = 160 mA h g)时具有接近理论放电容量的 326.7 mA h g,优异的倍率性能和良好的循环稳定性。增强的电化学性能归因于电化学活性的 {001} 和 {210} 暴露面,它们提供了沿着 [001] 和 [100] 轴的短而快速的 Li 扩散途径、碳纳米层和纳米片状结构,为 Li 萃取/插入过程提供了大的电极/电解质接触界面。