Han Fangming, Meng Guowen, Zhou Fei, Song Li, Li Xinhua, Hu Xiaoye, Zhu Xiaoguang, Wu Bing, Wei Bingqing
Key Laboratory of Materials Physics and Anhui Key Laboratory of Nanomaterials and Nanotechnology, Institute of Solid State Physics, Chinese Academy of Sciences, P. O. Box 1129, Hefei 230031, P. R. China.
Key Laboratory of Materials Physics and Anhui Key Laboratory of Nanomaterials and Nanotechnology, Institute of Solid State Physics, Chinese Academy of Sciences, P. O. Box 1129, Hefei 230031, P. R. China. ; University of Science and Technology of China, Hefei 230026, P. R. China.
Sci Adv. 2015 Oct 23;1(9):e1500605. doi: 10.1126/sciadv.1500605. eCollection 2015 Oct.
Dielectric capacitors are promising candidates for high-performance energy storage systems due to their high power density and increasing energy density. However, the traditional approach strategies to enhance the performance of dielectric capacitors cannot simultaneously achieve large capacitance and high breakdown voltage. We demonstrate that such limitations can be overcome by using a completely new three-dimensional (3D) nanoarchitectural electrode design. First, we fabricate a unique nanoporous anodic aluminum oxide (AAO) membrane with two sets of interdigitated and isolated straight nanopores opening toward opposite planar surfaces. By depositing carbon nanotubes in both sets of pores inside the AAO membrane, the new dielectric capacitor with 3D nanoscale interdigital electrodes is simply realized. In our new capacitors, the large specific surface area of AAO can provide large capacitance, whereas uniform pore walls and hemispheric barrier layers can enhance breakdown voltage. As a result, a high energy density of 2 Wh/kg, which is close to the value of a supercapacitor, can be achieved, showing promising potential in high-density electrical energy storage for various applications.
介电电容器因其高功率密度和不断提高的能量密度,成为高性能储能系统的理想候选者。然而,传统的提高介电电容器性能的方法策略无法同时实现大电容和高击穿电压。我们证明,通过使用全新的三维(3D)纳米结构电极设计,可以克服这些限制。首先,我们制备了一种独特的纳米多孔阳极氧化铝(AAO)膜,它有两组相互交错且孤立的直纳米孔,分别朝向相对的平面表面开口。通过在AAO膜内的两组孔中沉积碳纳米管,简单地实现了具有3D纳米级叉指电极的新型介电电容器。在我们的新型电容器中,AAO的大比表面积可提供大电容,而均匀的孔壁和半球形阻挡层可提高击穿电压。结果,可以实现2 Wh/kg的高能量密度,这接近超级电容器的值,在各种应用的高密度电能存储中显示出有前景的潜力。