MnO2@Nickel柔性超级电容器用纳米锥阵列涂布纸电极

Min Wang, Shengyu Hu, Songyang Su, Xuanyu Wang, Jiaxing Liu, Cheng Yang
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摘要

柔性超级电容器由于其高功率密度而被认为是可穿戴电子设备中有前途的电源补充候选者。然而,如何有效地大规模制造柔性、低成本的超级电容器电极仍然是一个关键的挑战。在此,我们展示了一种可扩展的分层电极制造方法,通过将空气铺纸金属化并加载二氧化锰作为阴极活性材料。具体来说,我们通过磁控溅射在空气铺纸上涂上一层薄薄的Ni,然后在Ni溅射纸上沉积Ni纳米锥阵列(NNAs),最后在NNAs上沉积MnO2,得到NNAs@MnO2纸电极。所制备的纸基电极具有高导电性和良好的润湿性,有利于电子和离子在导电网络中传输。此外,该电极具有分层结构,具有较大的比表面积。因此,电极具有高电容(451 F/g)和良好的循环性能(循环5000次后容量保持率为92.9%)。通过与涂覆在NNAs导电纸上的活性炭(AC)偶联作为阳极,构建了基于NNAs纸的不对称超级电容器。得益于高机械耐久性和电极的三维分层结构,非对称超级电容器具有优异的机械灵活性和高能量密度(1.08 mW/cm2时26.9 μWh/cm2)。这种方法可以很容易地扩大规模,以生产轻质和低成本的导电纸电极,使其有望在可穿戴电子产品中应用柔性超级电容器。
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MnO2@Nickel Nanocone Arrays Coated Paper Electrode for Flexible Supercapacitors
Flexible supercapacitors are considered as a promising candidate for power supplementation in wearable electronics due to their high power density. However, effectively fabricate flexible and low-cost supercapacitor electrodes in a big scale is still a key challenge. Herein we demonstrate a scalable fabrication method for hierarchical electrodes via metalizing air-laid paper and loading with MnO2 as cathode active materials. To be specific, we coat a thin layer of Ni on air-laid paper by magnetron sputtering, then deposit Ni nanocone arrays (NNAs) on the Ni sputtered paper and finally deposit MnO2 on the NNAs to obtain the NNAs@MnO2 paper electrode. The as-prepared paper-based electrode possesses high conductivity and fine wettability, which facilitates the electrons and ions transporting through the conductive network. Additionally, this electrode provides large specific surface area with a hierarchical architecture. Thus the electrode shows high capacitance (451 F/g) and favorable cycle performance (92.9% capacity retention after cycling for 5000 times). By coupling with activated carbon (AC) coated on the NNAs conductive paper as anode, an NNAs paper-based asymmetric supercapacitor is constructed. Benefiting from the high mechanical durability and the 3D hierarchical architecture of the electrodes, the asymmetric supercapacitor exhibits excellent mechanical flexibility and high energy density (26.9 μWh/cm2 at 1.08 mW/cm2). This method can be easily scaled up to produce lightweight and low-cost conductive paper electrodes, making it promising for the application of flexible supercapacitors in wearable electronics.
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