Chiu Chih-Wei, Huang Chen-Yang, Li Jia-Wun, Li Chia-Lin
Department of Materials Science and Engineering, National Taiwan University of Science and Technology, Taipei 10607, Taiwan.
ACS Appl Mater Interfaces. 2022 Sep 21;14(37):42441-42453. doi: 10.1021/acsami.2c11724. Epub 2022 Sep 9.
In this paper, a side-by-side, dual-nozzle electrospinning process was used to prepare a flexible hybrid electronics (FHE) material with excellent stretchable properties. A highly stable electrical conductivity was also imparted to the resulting membrane electrodes using silver nanoparticles (AgNPs) and carbon-based nanomaterials of different structures. The AgNP/carbon-based nanomaterials were coated onto bicomponent polymer nanofibers (composed of polyurethane (PU) and polyvinylidene difluoride (PVDF)) on the nanofiber membrane. The FHE nanofiber electrodes were finally integrated into clothing designed to accurately measure human body sensing signals (e.g., electrocardiography (ECG) and electromyography (EMG) signals). To effectively increase the high electrical conductivity, a polymer-type dispersant (polyisobutylene--poly(oxyethylene)--polyisobutylene, a triblock copolymer) was used to effectively and stably disperse AgNPs with different particle sizes and carbon-based nanomaterials with different geometric dimensions (e.g., zero-dimensional carbon black, one-dimensional carbon nanotubes, and two-dimensional graphene) through non-covalent adsorption. Moreover, the bicomponent PVDF-PU nanofibers were immersed in a mixed dispersant of AgNPs and carbon-based nanomaterials at low concentrations, and thermal post-treatment was conducted to improve the electrical conductivity. The AgNP/graphene oxide (GO) nanofiber electrode exhibited a continuous phase with a stable material microstructure after 5000 repetitions of 50% tension-tension fatigue testing. The waveform pattern obtained from the proposed AgNP/GO nanofiber electrode was compared with those of traditional ECG and EMG electrodes. The nanofiber web electrode treated with organic/inorganic mixed dispersants and verified via tests of its electrical and fatigue properties was found to be suitable for long-term ECG and EMG monitoring, and it has excellent potential in wearable smart sensors.
在本文中,采用并排双喷嘴静电纺丝工艺制备了具有优异拉伸性能的柔性混合电子(FHE)材料。还使用银纳米颗粒(AgNP)和不同结构的碳基纳米材料赋予所得膜电极高度稳定的导电性。将AgNP/碳基纳米材料涂覆在纳米纤维膜上的双组分聚合物纳米纤维(由聚氨酯(PU)和聚偏二氟乙烯(PVDF)组成)上。最终将FHE纳米纤维电极集成到旨在精确测量人体传感信号(例如心电图(ECG)和肌电图(EMG)信号)的服装中。为了有效提高高电导率,使用聚合物型分散剂(聚异丁烯 - 聚(氧乙烯) - 聚异丁烯,一种三嵌段共聚物)通过非共价吸附有效地稳定分散不同粒径的AgNP和不同几何尺寸的碳基纳米材料(例如零维炭黑、一维碳纳米管和二维石墨烯)。此外,将双组分PVDF-PU纳米纤维浸入低浓度的AgNP和碳基纳米材料的混合分散剂中,并进行热后处理以提高电导率。经过5000次50%拉伸-拉伸疲劳测试后,AgNP/氧化石墨烯(GO)纳米纤维电极呈现出具有稳定材料微观结构的连续相。将所提出的AgNP/GO纳米纤维电极获得的波形模式与传统ECG和EMG电极的波形模式进行了比较。经有机/无机混合分散剂处理并通过其电学和疲劳性能测试验证的纳米纤维网状电极被发现适用于长期ECG和EMG监测,并且在可穿戴智能传感器方面具有优异的潜力。