Breathable and wearable graphene/waterborne polyurethane coated regenerated polyethylene terephthalate fabrics for motion sensing and thermal therapy

IF 4.703 3区 材料科学
Zhou Zhang, Xuzhen Zhang, Wenjian Huang, Xiong Zheng, Bona Ding, Xiuhua Wang
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引用次数: 0

Abstract

The functional utilization of recycled polymers has emerged as a current prominent and timely subject. Flexible wearable devices with high sensitivity to conductivity have garnered significant attention in the fields of human healthcare monitoring and personal heat management. One significant obstacle that needs to be addressed is the simultaneous maintenance of both sensing functionality and durability in composite fabrics. In this paper, a collection of durable, breathable, and flexible smart fabric was produced using the scratch coating method. The fabrics were created by utilizing a regenerated polyethylene terephthalate fabric as a base material, incorporating graphene microsheets (G) as a conductive agent, and applying a waterborne polyurethane layer as a surface protective coating. Furthermore, an investigation was conducted to assess their sensing performance and electrothermal performance. The composite fabric exhibits significant advantages in terms of high conductivity (592 S/m), wide strain range, high sensitivity (Gauge factor = 6.04) and fantabulous dynamic stability (2000 cycles) at a mass ratio of Graphene/WPU loading of 8:2. These sensors were successfully utilized to monitor various degrees of real-time human body movements, ranging from significant deformation bending of elbows to slight deformation swallowing. Furthermore, the sensors also exhibit a significant electric heating effect. Specifically, when a voltage of 10 V is applied, the sensors can reach a steady state temperature of 53.3 °C within a mere 30 s. This discovery holds potential for the development of wearable heaters that can be used for on-demand thermal therapy, functional protective clothing, and medical electric heating wearables.

用于运动传感和热疗的透气可穿戴石墨烯/水性聚氨酯涂层再生聚对苯二甲酸乙二醇酯织物
再生聚合物的功能性利用已成为当前一个突出而及时的课题。在人体健康监测和个人热量管理领域,具有高传导灵敏度的柔性可穿戴设备备受关注。需要解决的一个重要障碍是同时保持复合织物的传感功能和耐用性。本文采用划痕涂层法制作了一系列耐用、透气、柔韧的智能织物。这些织物以再生聚对苯二甲酸乙二醇酯织物为基材,加入石墨烯微片(G)作为导电剂,并涂上水性聚氨酯层作为表面保护涂层。此外,还对其传感性能和电热性能进行了评估。在石墨烯/WPU 负载质量比为 8:2 的情况下,复合织物在高导电率(592 S/m)、宽应变范围、高灵敏度(量规系数 = 6.04)和超强动态稳定性(2000 次循环)方面表现出显著优势。这些传感器被成功用于监测各种程度的人体实时运动,从肘部的重大变形弯曲到轻微变形吞咽。此外,传感器还表现出显著的电加热效应。具体来说,当施加 10 V 电压时,传感器可在短短 30 秒内达到 53.3 °C的稳态温度。这一发现为开发可按需热疗、功能性防护服和医用电加热可穿戴设备的可穿戴加热器带来了潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nanoscale Research Letters
Nanoscale Research Letters NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
15.00
自引率
0.00%
发文量
110
审稿时长
2.5 months
期刊介绍: Nanoscale Research Letters (NRL) provides an interdisciplinary forum for communication of scientific and technological advances in the creation and use of objects at the nanometer scale. NRL is the first nanotechnology journal from a major publisher to be published with Open Access.
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