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Ultra-Lightweight 3D Carbon Current Collectors: Constructing All-Carbon Electrodes for Stable and High Energy Density Dual-Ion Batteries

机译:超轻型3D碳电流收集器:构建用于稳定和高能量密度双离子电池的全碳电极

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Dual-ion batteries (DIBs) attract great interest because they allow two types of ions for reversibly intercalating into electrodes, resulting in various advantages. However, there are three critical problems using graphite-based cathodes, namely, low active material proportion in the electrodes, current collector corrosion, and massive cathode variation. For addressing these problems, an ultra-lightweight 3D carbon current collector (CCC) is developed to fabricate all-carbon electrodes as both cathodes and anodes. Compared with the conventional DIBs using Al and Cu foils as current collectors, the DIBs with 3D CCC of electrically conductive pathways and sufficient ionic diffusion channels deliver enhanced specific capacity stabilized around 140 and 120 mAh g(-1) at 0.5 and 1C, respectively. The electrochemically inert 3D CCC could essentially promote the energy density when calculating the entire electrode mass, along with long-life cycle stability of 1000 cycles at 5C and no electrochemical corrosion on either anodes or cathodes. With an in situ optical microscope, the cathode expansion is found to massively reduce because the porous 3D CCC could effectively alleviate the huge volume. The results suggest a novel strategy for achieving low-cost and high energy density DIBs with both mechanically and electrochemically stable features.
机译:双离子电池(DIB)引起了极大的兴趣,因为它们允许两种类型的离子可逆地插入电极中,从而带来各种优势。然而,使用基于石墨的阴极存在三个关键问题,即,电极中活性物质的比例低,集电器腐蚀和大量阴极变化。为了解决这些问题,开发了超轻型3D碳集电器(CCC),以制造全碳电极作为阴极和阳极。与使用Al和Cu箔作为集电器的常规DIB相比,具有3D CCC导电路径和足够的离子扩散通道的DIB在0.5和1C时分别提供稳定在140和120 mAh g(-1)左右的增强的比容量。当计算整个电极质量时,电化学惰性的3D CCC基本上可以提高能量密度,并在5C下具有1000次循环的长寿命循环稳定性,并且阳极或阴极上均无电化学腐蚀。使用原位光学显微镜,发现阴极膨胀显着降低,因为多孔3D CCC可以有效减轻巨大体积。结果提出了一种新颖的策略,以实现具有机械和电化学稳定功能的低成本和高能量密度的DIB。

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