Guan Cao, Li Xianglin, Yu Hong, Mao Lu, Wong Lydia Helena, Yan Qingyu, Wang John
Department of Materials Science and Engineering, National University of Singapore, 117574 Singapore, Singapore.
Nanoscale. 2014 Nov 21;6(22):13824-30. doi: 10.1039/c4nr04505j.
The search for well-defined porous/hollowed metal oxide nanocomposites for high performance energy storage is promising. Herein, atomic layer deposition (ALD) has been utilized for the construction of a novel hollowed wire-in-tube nanostructure of CoO-in-CoSnO3, for which Co2(OH)2CO3 nanowires are first obtained by a hydrothermal method and then deposited with ALD SnO2. After a proper thermal treatment, a CoO wire-void-CoSnO3 tube was formed with the decomposition of Co2(OH)2CO3 and its simultaneous reaction with the outer SnO2 layer. In this unique wire-in-tube structure, both CoO and CoSnO3 are promising materials for lithium ion battery anodes with high theoretical capacities, and the porous + hollow feature is essential for better electrode/electrolyte contact, shorter ion diffusion path and better structure stability. After a further facile carbon coating, the hollowed wire-in-tube structure delivered an improved capacity of 1162.1 mA h g(-1), which is much higher than that of the bare CoO nanowire. Enhanced rate capability and cycling stability have also been demonstrated with the structure, showing its promising application for the anode material of lithium ion battery. The work also demonstrated an effective way of using ALD SnO2 for electrochemical energy storage that ALD SnO2 plays a key role in the structure formation and also serves as both active material and surface coating.
寻找用于高性能能量存储的结构明确的多孔/中空金属氧化物纳米复合材料具有广阔前景。在此,原子层沉积(ALD)被用于构建一种新型的CoO-in-CoSnO3中空管中丝纳米结构,其中首先通过水热法获得Co2(OH)2CO3纳米线,然后用ALD沉积SnO2。经过适当的热处理后,随着Co2(OH)2CO3的分解及其与外层SnO2层的同时反应,形成了CoO丝-空隙-CoSnO3管。在这种独特的管中丝结构中,CoO和CoSnO3都是具有高理论容量的锂离子电池负极的有前途的材料,并且多孔+中空特性对于更好的电极/电解质接触、更短的离子扩散路径和更好的结构稳定性至关重要。经过进一步简便的碳包覆后,中空管中丝结构的容量提高到了1162.1 mA h g(-1),远高于裸CoO纳米线的容量。该结构还表现出增强的倍率性能和循环稳定性,显示出其在锂离子电池负极材料方面的应用前景。这项工作还展示了一种使用ALD SnO2进行电化学能量存储的有效方法,即ALD SnO2在结构形成中起关键作用,并且既作为活性材料又作为表面涂层。