材料科学
五氧化二铁
剥脱关节
钒
纳米片
阴极
化学工程
电极
扩散
石墨烯
电池(电)
纳米技术
储能
氧化钒
氧化物
工程类
物理
物理化学
功率(物理)
化学
冶金
热力学
量子力学
作者
Chuanfang Zhang,Sang‐Hoon Park,Sean O’Brien,Andrés Seral‐Ascaso,Meiying Liang,Damien Hanlon,Dileep Krishnan,Alison Crossley,Niall McEvoy,Jonathan N. Coleman,Valeria Nicolosi
出处
期刊:Nano Energy
[Elsevier BV]
日期:2017-06-28
卷期号:39: 151-161
被引量:130
标识
DOI:10.1016/j.nanoen.2017.06.044
摘要
With a layered crystal structure and good Li+ storage performance, vanadium pentoxide (V2O5) is potentially a high-energy and cost-effective cathode material for Li-ion batteries (LiBs). Networks of two-dimensional V2O5 nanosheets (2D V2O5 NS), with large interlayer distance, are ideal for enhancing the Li+ diffusion kinetics and thus for building high power LiBs. However, the lack of a simple, scalable and environmentally friendly route to nanosheet production still hinders the development of V2O5 applications. Here we demonstrate, liquid-phase exfoliation (LPE) of commercial V2O5 powder in environmental friendly solvents (water and ethanol) to achieve large quantities of 2D V2O5 NS dispersions. The V2O5 NS are of high-quality whose interlayer spacing can be well manipulated, ranging from 4.4Å to 11.5 Å in ethanol and water (forming NS xerogel), respectively. Ultrasonic aerosol printing of V2O5 NS xerogel/single-wall carbon nanotube (SWCNT) blended dispersions resulted in large-area, flexible, and binder-free hybrid electrodes, which showcase a high discharge capacity of 370 mA h g−1 at 0.05 C, high energy density (555 W h kg−1) and power density (2175 W kg−1), etc. These properties can be attributed to the synergistic effects between the expanded hydrated NS and the conductive SWCNT matrix; the latter improves the reversible phase transition reactions of the NS, enhances the ion diffusion kinetics, maintains the electrode's mechanical integrity and provides electron transport pathways. The Li+ storage mechanism was investigated, suggesting the capacity was majorly contributed by the non-diffusion controlled process (pseudocapacitive). We believe the LPE/aerosol printing approach is environmentally green, general and scalable, and could be extended to other layered transitional metal oxides or dichalcogenides for fabrication of corresponding flexible, binder-free, conductive composites for energy storage systems.
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