Zhu Xiaoli, Zhang Peng, Xu Shan, Yan Xingbin, Xue Qunji
Laboratory of Clean Energy Chemistry and Materials, Lanzhou Institute of Chemical Physics, Chinese Academy of Science , Lanzhou 730000, People's Republic of China.
ACS Appl Mater Interfaces. 2014 Jul 23;6(14):11665-74. doi: 10.1021/am5024258. Epub 2014 Jul 10.
Novel three-dimensional (3D) hybrid materials, i.e., free-standing 3D graphene-supported MnO2 nanosheets, are prepared by a simple and controllable solution-phase assembly process. Characterization results show that MnO2 nanosheets are uniformly anchored on a 3D graphene framework with strong adhesion and the integral hybrids show desirable mechanical strength. Such unique structure of 3D graphene/MnO2 hybrids thus provides the right characteristics of binder-free electrode materials and could enable the design of different kinds of high-performance energy storage devices. Especially, an advanced asymmetric supercapacitor is built by using a 3D graphene/MnO2 hybrid and a 3D graphene as two electrodes, and it is able to work reversibly in a full operation voltage region of 0-3.5 V in an ionic liquid electrolyte and thus exhibits a high energy density of 68.4 Wh/kg. As the cathode materials for Li-O2 and Li-MnO2 batteries, the 3D graphene/MnO2 hybrids exhibit outstanding performances, including good catalytic capability, high reversible capacity and desirable cycling stability. The results presented here may pave a way for new promising applications of such 3D graphene/MnO2 hybrids in advanced electrochemical energy storage devices.
新型三维(3D)杂化材料,即独立的3D石墨烯负载MnO₂纳米片,通过简单可控的溶液相组装工艺制备而成。表征结果表明,MnO₂纳米片以强附着力均匀地锚定在3D石墨烯框架上,整体杂化材料具有理想的机械强度。3D石墨烯/MnO₂杂化材料的这种独特结构因此提供了无粘结剂电极材料的合适特性,并能够设计出各种高性能储能器件。特别是,通过使用3D石墨烯/MnO₂杂化材料和3D石墨烯作为两个电极构建了一种先进的不对称超级电容器,它能够在离子液体电解质中0-3.5V的全工作电压范围内可逆工作,因此表现出68.4Wh/kg的高能量密度。作为锂氧电池和锂锰氧化物电池的阴极材料,3D石墨烯/MnO₂杂化材料表现出优异的性能,包括良好的催化能力、高可逆容量和理想的循环稳定性。这里展示的结果可能为这种3D石墨烯/MnO₂杂化材料在先进电化学储能器件中的新的有前景的应用铺平道路。