Marzia Dulal, Harsh Rajesh Mansukhlal Modha, Jingqi Liu, Md Rashedul Islam, Chris Carr, Tawfique Hasan, Robin Michael Statham Thorn, Shaila Afroj, Nazmul Karim
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引用次数: 0
摘要
嵌入式电子设备的可穿戴电子纺织品(e-纺织品)为不显眼的实时健康监测提供了有前途的解决方案,提高了医疗保健效率。然而,它们的采用受到材料、制造和回收方面的性能和可持续性挑战的限制。本研究为全喷墨打印智能、可穿戴和环保电子纺织品(SWEET)的制造引入了一种可持续的范例,并首次对生物降解性和生命周期评估(LCA)进行了全面评估。SWEET解决了现有的限制,能够同时和连续地监测人体生理,包括皮肤表面温度(在电阻温度系数下,TCR值为~ - 4.4%°C−1)和心率(~74次/分钟,bpm),就像行业黄金标准一样,使用一致的、通用的、高效的喷喷印刷石墨烯和聚(3,4-乙烯二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS)为基础的可穿戴电子纺织品。五名参与者穿着可穿戴服装进行演示,证实了该系统监测心电图信号和皮肤温度的能力。这种可持续和可生物降解的电子纺织品在4个月内重量分解约48%,强度下降约98%。生命周期评估(LCA)表明,石墨烯基电极对气候变化的影响最低,为~0.037 kg CO2当量,比参考电极低40倍。这种方法解决了材料和制造方面的挑战,同时符合环境责任,标志着用于个性化医疗保健管理的可持续电子纺织品技术的重大飞跃。
Sustainable, Wearable, and Eco-Friendly Electronic Textiles
Wearable electronic textiles (e-textiles) with embedded electronics offer promising solutions for unobtrusive, real-time health monitoring, enhancing healthcare efficiency. However, their adoption is limited by performance and sustainability challenges in materials, manufacturing, and recycling. This study introduces a sustainable paradigm for the fabrication of fully inkjet-printed Smart, Wearable, and Eco-friendly Electronic Textiles (SWEET) with the first comprehensive assessments of the biodegradability and life cycle assessment (LCA). SWEET addresses existing limitations, enabling concurrent and continuous monitoring of human physiology, including skin surface temperature (at temperature coefficient of resistance, TCR value of ~−4.4% °C−1) and heart rate (~74 beats per minute, bpm) separately and simultaneously like the industry gold standard, using consistent, versatile, and highly efficient inkjet-printed graphene and Poly (3,4-ethylenedioxythiophene): poly (styrene sulfonate) (PEDOT:PSS)-based wearable e-textiles. Demonstrations with a wearable garment on five human participants confirm the system's capability to monitor their electrocardiogram (ECG) signals and skin temperature. Such sustainable and biodegradable e-textiles decompose by ~48% in weight and lost ~98% strength over 4 months. Life cycle assessment (LCA) reveals that the graphene-based electrode has the lowest climate change impact of ~0.037 kg CO2 eq, 40 times lower than reference electrodes. This approach addresses material and manufacturing challenges, while aligning with environmental responsibility, marking a significant leap forward in sustainable e-textile technology for personalized healthcare management.
期刊介绍:
Energy & Environmental Materials (EEM) is an international journal published by Zhengzhou University in collaboration with John Wiley & Sons, Inc. The journal aims to publish high quality research related to materials for energy harvesting, conversion, storage, and transport, as well as for creating a cleaner environment. EEM welcomes research work of significant general interest that has a high impact on society-relevant technological advances. The scope of the journal is intentionally broad, recognizing the complexity of issues and challenges related to energy and environmental materials. Therefore, interdisciplinary work across basic science and engineering disciplines is particularly encouraged. The areas covered by the journal include, but are not limited to, materials and composites for photovoltaics and photoelectrochemistry, bioprocessing, batteries, fuel cells, supercapacitors, clean air, and devices with multifunctionality. The readership of the journal includes chemical, physical, biological, materials, and environmental scientists and engineers from academia, industry, and policy-making.