Wilson Evan, Islam Mohammad F
Department of Materials Science & Engineering, Carnegie Mellon University , 5000 Forbes Avenue, Pittsburgh, Pennsylvania 15213, United States.
ACS Appl Mater Interfaces. 2015 Mar 11;7(9):5612-8. doi: 10.1021/acsami.5b01384. Epub 2015 Mar 2.
Emerging applications for electrochemical energy storage require devices that not only possess high power and energy, but also are capable of withstanding mechanical deformation without degradation of performance. To this end, we have constructed electric double layer capacitors (EDLCs), also referred to as supercapacitors, using thick, ultracompressible graphene-coated carbon nanotube aerogels as electrodes. These electrodes showed a high capacitance in both aqueous and room-temperature ionic liquid (RTIL) electrolytes, achieving between 60 and100 F/g, respectively, with the performance stable over hundreds of charge/discharge cycles and at high rates exceeding 1 V/s. This performance was retained fully under 90% compression of the systems, allowing us to construct cells with high volumetric capacitances of ∼5-18 F/cm(3) in aqueous and RTIL electrolytes, respectively, which are 50-100 times higher than comparable compressible EDLCs (∼0.1 F/cm(3)). Further, the volumetric capacitances approach values reported for compressible pseudocapacitors (∼15-30 F/cm(3)) but without the degraded lifetime and reversibility that typically plague compressible pseudocapacitors. The electrodes demonstrated largely strain-invariant ion transport with no change in capacitance and high-rate performance even at 90% compressive strain. This material serves as an excellent platform for exploring the possibility for use of extremely compressible EDLCs with negligible degradation in capacitance in applications such as electric vehicles and wearable electronics.
不仅具备高功率和高能量,而且能够承受机械变形而不降低性能。为此,我们使用厚的、超可压缩的石墨烯包覆碳纳米管气凝胶作为电极,构建了双电层电容器(EDLC),也称为超级电容器。这些电极在水性和室温离子液体(RTIL)电解质中均表现出高电容,分别达到60至100F/g,在数百次充放电循环以及高达1V/s以上的高倍率下性能稳定。在系统90%压缩下,该性能完全得以保持,这使我们能够分别在水性和RTIL电解质中构建具有约5-18F/cm³高体积电容的电池,这比同类可压缩EDLC(约0.1F/cm³)高50-100倍。此外,体积电容接近可压缩赝电容器报道的值(约15-30F/cm³),但没有通常困扰可压缩赝电容器的寿命缩短和可逆性变差的问题。电极在高达90%压缩应变下表现出基本应变不变的离子传输,电容和高倍率性能均无变化。这种材料是探索在电动汽车和可穿戴电子设备等应用中使用电容退化可忽略不计的极可压缩EDLC可能性的极佳平台。