Pushparaj Victor L, Shaijumon Manikoth M, Kumar Ashavani, Murugesan Saravanababu, Ci Lijie, Vajtai Robert, Linhardt Robert J, Nalamasu Omkaram, Ajayan Pulickel M
Department of Materials Science and Engineering, Center for Biotechnology and Interdisciplinary Studies, Rensselaer Polytechnic Institute, Troy, NY 12180, USA.
Proc Natl Acad Sci U S A. 2007 Aug 21;104(34):13574-7. doi: 10.1073/pnas.0706508104. Epub 2007 Aug 15.
There is strong recent interest in ultrathin, flexible, safe energy storage devices to meet the various design and power needs of modern gadgets. To build such fully flexible and robust electrochemical devices, multiple components with specific electrochemical and interfacial properties need to be integrated into single units. Here we show that these basic components, the electrode, separator, and electrolyte, can all be integrated into single contiguous nanocomposite units that can serve as building blocks for a variety of thin mechanically flexible energy storage devices. Nanoporous cellulose paper embedded with aligned carbon nanotube electrode and electrolyte constitutes the basic unit. The units are used to build various flexible supercapacitor, battery, hybrid, and dual-storage battery-in-supercapacitor devices. The thin freestanding nanocomposite paper devices offer complete mechanical flexibility during operation. The supercapacitors operate with electrolytes including aqueous solvents, room temperature ionic liquids, and bioelectrolytes and over record temperature ranges. These easy-to-assemble integrated nanocomposite energy-storage systems could provide unprecedented design ingenuity for a variety of devices operating over a wide range of temperature and environmental conditions.
近期,人们对超薄、灵活且安全的储能装置兴趣浓厚,以满足现代电子产品的各种设计和功率需求。为构建此类完全灵活且坚固的电化学装置,需要将具有特定电化学和界面特性的多个组件集成到单个单元中。在此,我们展示了这些基本组件,即电极、隔膜和电解质,均可集成到单个连续的纳米复合单元中,这些单元可作为各种薄型机械柔性储能装置的构建模块。嵌入排列的碳纳米管电极和电解质的纳米多孔纤维素纸构成了基本单元。这些单元用于构建各种柔性超级电容器、电池、混合电池以及超级电容器内置双储能电池装置。薄型独立纳米复合纸装置在运行过程中具备完全的机械柔韧性。超级电容器可使用包括水性溶剂、室温离子液体和生物电解质在内的电解质,并在创纪录的温度范围内运行。这些易于组装的集成纳米复合储能系统可为在广泛温度和环境条件下运行的各种装置提供前所未有的设计创意。