Key Laboratory of Mesoscopic Chemistry of MOE and Jiangsu Provincial Lab for Nanotechnology, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210023, China.
Adv Mater. 2017 Jun;29(24). doi: 10.1002/adma.201700470. Epub 2017 Apr 18.
High volumetric energy density combined with high power density is highly desired for electrical double-layer capacitors. Usually the volumetric performance is improved by compressing carbon material to increase density but at the much expense of power density due to the deviation of the compressed porous structure from the ideal one. Herein the authors report an efficient approach to increase the density and optimize the porous structure by collapsing the carbon nanocages via capillarity. Three samples with decreasing sizes of meso- and macropores provide us an ideal model system to demonstrate the correlation of volumetric performance with porous structure. The results indicate that reducing the surplus macropores and, more importantly, the surplus mesopores is an efficient strategy to enhance the volumetric energy density while keeping the high power density. The optimized sample achieves a record-high stack volumetric energy density of 73 Wh L in ionic liquid with superb power density and cycling stability.
高体积能量密度与高功率密度是双电层电容器所追求的理想特性。通常,通过压缩碳材料来提高密度可以改善体积性能,但由于压缩多孔结构偏离理想结构,会大大降低功率密度。在此,作者报告了一种通过毛细作用使碳纳米笼坍塌来提高密度和优化多孔结构的有效方法。三个具有不同中孔和大孔尺寸的样品为我们提供了一个理想的模型系统,以证明体积性能与多孔结构的相关性。结果表明,减少多余的大孔,更重要的是,减少多余的中孔,是提高体积能量密度而保持高功率密度的有效策略。优化后的样品在离子液体中实现了创纪录的 73 Wh L 的堆叠体积能量密度,具有出色的功率密度和循环稳定性。