Department of Materials Science and Engineering, City University of Hong Kong , 83 Tat Chee Avenue, Hong Kong, China.
School of Material Science and Engineering, University of Jinan , Jinan 250022, China.
ACS Nano. 2017 Sep 26;11(9):8953-8961. doi: 10.1021/acsnano.7b03322. Epub 2017 Aug 18.
With intrinsic safety and much higher energy densities than supercapacitors, rechargeable nickel/cobalt-zinc-based textile batteries are promising power sources for next generation personalized wearable electronics. However, high-performance wearable nickel/cobalt-zinc-based batteries are rarely reported because there is a lack of industrially weavable and knittable highly conductive yarns. Here, we use scalably produced highly conductive yarns uniformly covered with zinc (as anode) and nickel cobalt hydroxide nanosheets (as cathode) to fabricate rechargeable yarn batteries. They possess a battery level capacity and energy density, as well as a supercapacitor level power density. They deliver high specific capacity of 5 mAh cm and energy densities of 0.12 mWh cm and 8 mWh cm (based on the whole solid battery). They exhibit ultrahigh rate capabilities of 232 C (liquid electrolyte) and 116 C (solid electrolyte), which endows the batteries excellent power densities of 32.8 mW cm and 2.2 W cm (based on the whole solid battery). These are among the highest values reported so far. A wrist band battery is further constructed by using a large conductive cloth woven from the conductive yarns by a commercial weaving machine. It powers various electronic devices successfully, enabling dual functions of wearability and energy storage.
与超级电容器相比,具有本征安全性和更高能量密度的可充电镍/钴-锌基纺织电池是下一代个性化可穿戴电子产品有前途的电源。然而,由于缺乏可工业编织和针织的高导电性纱线,很少有高性能的可穿戴镍/钴-锌基电池被报道。在这里,我们使用可规模化生产的高度导电纱线,其表面均匀覆盖有锌(作为阳极)和镍钴氢氧化物纳米片(作为阴极),以制造可充电纱线电池。它们具有电池级的容量和能量密度,以及超级电容器级的功率密度。它们提供了 5 mAh cm 的高比容量和 0.12 mWh cm 和 8 mWh cm(基于整个固态电池)的能量密度。它们具有超高的倍率性能,在液体电解质中为 232 C,在固体电解质中为 116 C,这赋予了电池在基于整个固态电池的情况下 32.8 mW cm 和 2.2 W cm 的出色功率密度。这些是迄今为止报道的最高值之一。进一步使用由导电纱线通过商业织机编织而成的大导电布来构建腕带电池。它成功地为各种电子设备供电,实现了可穿戴性和储能的双重功能。