†Department of Physics and Materials Science, City University of Hong Kong, 83 Tat Chee Avenue, Hong Kong, China.
‡Institute of Textiles and Clothing, The Hong Kong Polytechnic University, 11 Hong Chong Road, Hong Kong, China.
ACS Nano. 2015 May 26;9(5):4766-75. doi: 10.1021/acsnano.5b00860. Epub 2015 Apr 16.
Wearable electronic textiles that store capacitive energy are a next frontier in personalized electronics. However, the lack of industrially weavable and knittable conductive yarns in conjunction with high capacitance, limits the wide-scale application of such textiles. Here pristine soft conductive yarns are continuously produced by a scalable method with the use of twist-bundle-drawing technique, and are mechanically robust enough to be knitted to a cloth by a commercial cloth knitting machine. Subsequently, the reduced-graphene-oxide-modified conductive yarns covered with a hierarchical structure of MnO2 nanosheets and a polypyrrole thin film were used to fabricate weavable, knittable and wearable yarn supercapacitors. The resultant modified yarns exhibit specific capacitances as high as 36.6 mF cm(-1) and 486 mF cm(-2) in aqueous electrolyte (three-electrode cell) or 31 mF cm(-1) and 411 mF cm(-2) in all solid-state two-electrode cell. The symmetric solid-state supercapacitor has high energy densities of 0.0092 mWh cm(-2) and 1.1 mWh cm(-3) (both normalized to the whole device) with a long cycle life. Large energy storage textiles are fabricated by weaving our flexible all-solid-state supercapacitor yarns to a 15 cm × 10 cm cloth on a loom and knitting in a woollen wrist band to form a pattern, enabling dual functionalities of energy storage capability and wearability.
可穿戴储能纺织品是个性化电子产品的一个新兴研究领域。然而,由于缺乏可编织和可针织的高导电性纱线,以及其有限的电容,此类纺织品的应用受到了很大限制。在这里,我们提出了一种连续生产原始软导电纱线的方法,该方法使用了扭辫拉伸技术,并且纱线具有足够的机械强度,可以通过商用针织机编织成布。随后,将还原氧化石墨烯修饰的导电纱线与具有分层结构的 MnO2 纳米片和聚吡咯薄膜结合,用于制造可编织、可针织和可穿戴的纱线超级电容器。所得的改性纱线在水性电解液(三电极电池)中具有高达 36.6 mF cm(-1)和 486 mF cm(-2)的比电容,或在全固态两电极电池中具有 31 mF cm(-1)和 411 mF cm(-2)的比电容。对称固态超级电容器具有 0.0092 mWh cm(-2)和 1.1 mWh cm(-3)(均相对于整个器件归一化)的高能量密度,且具有长循环寿命。通过将我们的柔性全固态超级电容器纱线编织到织机上的 15 cm × 10 cm 布上,并在羊毛腕带中编织成图案,制作出了储能纺织品,使其兼具储能能力和可穿戴性两种功能。