Dulal Marzia, Afroj Shaila, Islam Md Rashedul, Zhang Minglonghai, Yang Yadie, Hu Hong, Novoselov Kostya S, Karim Nazmul
Centre for Print Research, The University of the West of England, Bristol, BS16 1QY, UK.
Department of Textile Engineering Management, Bangladesh University of Textiles (BUTEX), Tejgaon Industrial Area, Dhaka, 1208, Bangladesh.
Small. 2024 Dec;20(50):e2407207. doi: 10.1002/smll.202407207. Epub 2024 Oct 2.
Wearable electronic textiles (e-textiles) are transforming personalized healthcare through innovative applications. However, integrating electronics into textiles for e-textile manufacturing exacerbates the rapidly growing issues of electronic waste (e-waste) and textile recycling due to the complicated recycling and disposal processes needed for mixed materials, including textile fibers, electronic materials, and components. Here, first closed-loop recycling for wearable e-textiles is reported by incorporating the thermal-pyrolysis of graphene-based e-textiles to convert them into graphene-like electrically conductive recycled powders. A scalable pad-dry coating technique is then used to reproduce graphene-based wearable e-textiles and demonstrate their potential healthcare applications as wearable electrodes for capturing electrocardiogram (ECG) signals and temperature sensors. Additionally, recycled graphene-based textile supercapacitor highlights their potential as sustainable energy storage devices, maintaining notable durability and retaining ≈94% capacitance after 1000 cycles with an areal capacitance of 4.92 mF cm⁻. Such sustainable closed-loop recycling of e-textiles showcases the potential for their repurposing into multifunctional applications, promoting a circular approach that potentially prevents negative environmental impact and reduces landfill disposal.
可穿戴电子纺织品(电子织物)正在通过创新应用改变个性化医疗保健。然而,将电子元件集成到纺织品中用于电子织物制造,由于包括纺织纤维、电子材料和组件在内的混合材料需要复杂的回收和处理过程,加剧了电子废物(电子垃圾)和纺织品回收这两个迅速增长的问题。在此,通过将基于石墨烯的电子织物进行热解,将其转化为类石墨烯导电回收粉末,首次报道了可穿戴电子织物的闭环回收。然后使用一种可扩展的轧染涂层技术来重现基于石墨烯的可穿戴电子织物,并展示其作为可穿戴电极捕获心电图(ECG)信号和温度传感器的潜在医疗保健应用。此外,回收的基于石墨烯的纺织超级电容器突出了它们作为可持续储能设备的潜力,具有显著的耐久性,在1000次循环后仍保持约94%的电容,面积电容为4.92 mF cm⁻ 。这种电子织物的可持续闭环回收展示了将其重新用于多功能应用的潜力,促进了一种循环利用方式,有可能防止负面环境影响并减少填埋处理。