Talukdar Meenakshi, Behera Sushant Kumar, Deb Pritam
Advanced Functional Material Laboratory (AFML), Department of Physics, Tezpur University (Central University), Tezpur-784028, India.
Dalton Trans. 2019 Aug 28;48(32):12137-12146. doi: 10.1039/c9dt02423a. Epub 2019 Jul 22.
Portable miniaturized energy storage micro-supercapacitors have attracted significant attention due to their power source and energy storage capacity, replacing batteries in ultra-small electronic devices. Fabrication with porous and 2D graphitic nanomaterials with high conductivity and surface area leads to high-performance micro-supercapacitors. In order to satisfy the fast-growing energy demands for the next generation, we report performance and design of a 2D heterostructured EDLC (g-CN) and pseudocapacitor (FeNi) resulting in short ionic diffusion path and prominent charge storage based on synergic functionalities. This heterostructure system shows an enhanced quantum capacitance (38% enhancement) due to delocalized states near the Fermi level. Having achieved an areal capacitance of 19.21 mF cm, capacitive retention (94%), enhanced power density (17-fold), having ultrahigh energy density of 0.30 W h cm and stability of the material even without any obvious degradation after 1000 cycles, this smart heterostructure acts as a new platform for designing high-performance in-plane micro-supercapacitors.
便携式小型化储能微型超级电容器因其电源和储能能力而备受关注,有望在超小型电子设备中取代电池。采用具有高导电性和高表面积的多孔二维石墨纳米材料制造,可得到高性能的微型超级电容器。为了满足下一代快速增长的能源需求,我们报道了一种二维异质结构双电层电容器(g-CN)和赝电容器(FeNi)的性能与设计,该结构基于协同功能,具有短离子扩散路径和显著的电荷存储能力。由于费米能级附近的离域态,这种异质结构系统显示出增强的量子电容(提高了38%)。该智能异质结构实现了19.21 mF/cm²的面积电容、94%的电容保持率、增强的功率密度(提高了17倍)、0.30 W h/cm³的超高能量密度,并且材料在1000次循环后甚至没有明显降解,稳定性良好,为设计高性能平面微型超级电容器提供了一个新平台。