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Wearable Supercapacitors Printed on Garments

机译:服装上印刷的可穿戴超级电容器

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Electronic garments have garnered considerable attention as a core technology for the upcoming wearable electronics era. To enable ubiquitous operation of electronic garments, they must be monolithically integrated with rechargeable power sources. Here, inspired by printing-assisted aesthetic clothing designs, a new class of wearable supercapacitors (SCs) is demonstrated that can be directly printed on T-shirts, which look like letters (or symbols) commonly printed on T-shirts. The printed SCs consist of activated carbon/multiwalled carbon nanotube/ionic liquid-based electrodes and ionic liquid/thiol-ene polymer network skeleton/SiO2 nanoparticle-based gel electrolytes. The rheological properties of the electrode/electrolyte pastes are fine-tuned by varying the colloidal network structure, which affects the printing processability and formation of the nanoscale ion/electron conduction channels. To ensure the seamless unitization and design versatility of the printed SCs, the T-shirt is sewn with electroconductive stainless steel (SS) threads prior to the printing process. Onto the SS threads acting as shape-directing current collectors, the electrode/electrolyte pastes are sequentially stencil-printed and sealed with water-proof packaging films. The printed SCs exhibit exceptional form factors, flexibility, and thermal stability. Notably, the SC-printed T-shirts maintain their electrochemical activity upon exposure to laundering, wringing, ironing, and folding, demonstrating their potential and practical applicability as a promising electronic garment technology.
机译:作为即将到来的可穿戴电子产品时代的核心技术,电子服装已经引起了广泛的关注。为了使电子服装无处不在,电子服装必须与可充电电源整体集成。在这里,受印刷辅助美学服装设计的启发,展示了一种新型可穿戴超级电容器(SC),它们可以直接印刷在T恤衫上,看起来就像通常印在T恤衫上的字母(或符号)一样。印刷的SC包括活性炭/多壁碳纳米管/离子液体基电极和离子液体/硫醇-烯聚合物网络骨架/ SiO2纳米粒子基凝胶电解质。通过改变胶体网络结构来微调电极/电解质浆料的流变性,这会影响印刷加工性能和纳米级离子/电子传导通道的形成。为了确保已打印的SC的无缝组合和设计的多功能性,在打印过程之前,将T恤用导电不锈钢(SS)线缝制。在用作定型集电器的SS螺纹上,依次进行模版印刷并用防水包装膜密封电极/电解质浆料。印刷的SC表现出出色的外形,柔韧性和热稳定性。值得注意的是,SC印刷T恤在经受洗涤,拧干,熨烫和折叠后仍保持其电化学活性,证明了其作为有前途的电子服装技术的潜力和实际适用性。

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