Department of Chemical Engineering, Waterloo Institute for Nanotechnology, Waterloo Institute for Sustainable Energy, University of Waterloo , 200 University Avenue West, Waterloo, Ontario N2L 3G1, Canada.
Nano Lett. 2016 Mar 9;16(3):1794-802. doi: 10.1021/acs.nanolett.5b04788. Epub 2016 Feb 18.
Herein, a proof-of-concept of novel hybrid rechargeable battery based on electrochemical reactions of both nickel-zinc and zinc-air batteries is demonstrated using NiO/Ni(OH)2 nanoflakes self-assembled into mesoporous spheres as the active electrode material. The hybrid battery operates on two sets of fundamentally different battery reactions combined at the cell level, unlike in other hybrid systems where batteries of different reactions are simply connected through an external circuitry. As a result of combining nickel-zinc and zinc-air reactions, the hybrid battery demonstrates both remarkably high power density (volumetric, 14 000 W L(-1); gravimetric, 2700 W kg(-1)) and energy density of 980 W h kg(-1), significantly outperforming the performances of a conventional zinc-air battery. Furthermore, the hybrid battery demonstrates excellent charge rate capability up to 10 times faster than the rate of discharge without any capacity and voltage degradations, which makes it highly suited for large-scale applications such as electric vehicle propulsion and smart-grid energy storage.
本文展示了一种基于镍锌电池和锌空电池电化学反应的新型混合可充电电池的概念验证,该电池使用自组装成介孔球的 NiO/Ni(OH)2 纳米片作为活性电极材料。与其他混合系统不同,该混合电池在单元级别上结合了两组完全不同的电池反应,而不是通过外部电路简单地连接不同反应的电池。由于结合了镍锌和锌空反应,混合电池具有极高的功率密度(体积为 14000 W L(-1);重量为 2700 W kg(-1))和能量密度 980 W h kg(-1),显著优于传统锌空电池的性能。此外,该混合电池具有出色的充电速率能力,可在 10 倍于放电速率的情况下实现,而不会出现任何容量和电压下降,这使其非常适合电动汽车推进和智能电网储能等大规模应用。