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Building 3D structures of vanadium pentoxide nanosheets and application as electrodes in supercapacitors

机译:五氧化二钒纳米片的3D结构构建及其在超级电容器中的电极应用

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摘要

Various two-dimensional (2D) materials have recently attracted great attention owing to their unique properties and wide application potential in electronics, catalysis, energy storage, and conversion. However, large-scale production of ultrathin sheets and functional nanosheets remains a scientific and engineering challenge. Here we demonstrate an efficient approach for large-scale production of V_2O_5 nanosheets having a thickness of 4 nm and utilization as building blocks for constructing 3D architectures via a freeze-drying process. The resulting highly flexible V _2O_5 structures possess a surface area of 133 m~2 g~(-1), ultrathin walls, and multilevel pores. Such unique features are favorable for providing easy access of the electrolyte to the structure when they are used as a supercapacitor electrode, and they also provide a large electroactive surface that advantageous in energy storage applications. As a consequence, a high specific capacitance of 451 F g~(-1) is achieved in a neutral aqueous Na_2SO_4 electrolyte as the 3D architectures are utilized for energy storage. Remarkably, the capacitance retention after 4000 cycles is more than 90%, and the energy density is up to 107 W·h·kg~(-1) at a high power density of 9.4 kW kg ~(-1).
机译:各种二维(2D)材料由于其独特的特性以及在电子,催化,能量存储和转换方面的广泛应用潜力,最近引起了极大的关注。然而,超薄片和功能纳米片的大规模生产仍然是科学和工程上的挑战。在这里,我们演示了一种大规模生产V_2O_5纳米片的有效方法,该片厚度为4 nm,并用作通过冷冻干燥过程构建3D体系结构的基础。所得的高柔性V _2O_5结构的表面积为133 m〜2 g〜(-1),具有超薄的壁和多级孔。当将它们用作超级电容器电极时,这种独特的特征有利于使电解质易于进入结构,并且它们还提供了大的电活性表面,这在能量存储应用中是有利的。结果,当3D架构被用于能量存储时,在中性Na_2SO_4水溶液中获得了451 F g〜(-1)的高比电容。值得注意的是,在9.4 kW kg〜(-1)的高功率密度下,经过4000次循环后的电容保持率超过90%,并且能量密度高达107 W·h·kg〜(-1)。

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