Department of Electrical Engineering and Information Systems , University of Tokyo , 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656 , Japan.
Center for Emergent Matter Science (CEMS), RIKEN , 2-1 Hirosawa, Wako, Saitama 351-0198 , Japan.
ACS Nano. 2019 Jul 23;13(7):7905-7912. doi: 10.1021/acsnano.9b02297. Epub 2019 Jun 21.
Soft and stretchable electrodes are essential components for skin-tight wearable devices, which can provide comfortable, unobtrusive, and accurate physiological monitoring and physical sensing for applications such as healthcare, medical treatment, and human-machine interfaces. Metal-elastomer nanocomposites are a promising approach, enabling high conductivity and stretchability derived from metallic conduction and percolation networks of metal nano/micro fillers. However, their practical application is still limited by their inferior cyclic stability and long-term durability. Here, we report on a highly durable nanofiber-reinforced metal-elastomer composite consisting of (i) metal fillers, (ii) an elastomeric binder matrix, and (iii) electrospun polyvinylidene fluoride nanofibers for enhancing both cyclic stability and conductivity. Embedded polyvinylidene fluoride (PVDF) nanofibers enhance the toughness and suppress the crack growth by providing a fiber reinforcing effect. Furthermore, the conductivity of nanofiber-reinforced elastic conductor is four times greater than the pristine material because the silver-rich layer is self-assembled on the top surface by a filtering effect. As a result, a stretchable electrode made from nanofiber-reinforced elastic conductors and wrinkled structures has both excellent cyclic durability and high conductivity and is stretchable up to 800%. The cyclic degradation () remains at 0.56 after 5000 stretching cycles (50% strain), whereas initial conductivity and sheet resistance are 9903 S cm and 0.047 Ω sq, respectively. By utilizing a highly conductive and durable elastic conductor as sensor electrodes and wirings, a skin-tight multimodal physiological sensing suit is demonstrated. Continuous long-term monitoring of electrocardiogram, electromyogram, and motions during weight-lifting exercises are successfully demonstrated without significant degradation of signal quality.
柔软且可拉伸的电极是贴身可穿戴设备的重要组成部分,可提供舒适、隐蔽且准确的生理监测和物理感应,适用于医疗保健、医疗治疗和人机接口等应用。金属弹性体纳米复合材料是一种很有前途的方法,它可以通过金属纳米/微填料的金属传导和渗流网络实现高导电性和可拉伸性。然而,其实际应用仍然受到循环稳定性和长期耐久性差的限制。在这里,我们报告了一种高度耐用的纳米纤维增强金属弹性体复合材料,由(i)金属填料、(ii)弹性粘结基质和(iii)静电纺聚偏二氟乙烯纳米纤维组成,以增强循环稳定性和导电性。嵌入的聚偏二氟乙烯(PVDF)纳米纤维通过提供纤维增强效应来提高韧性并抑制裂纹扩展。此外,纳米纤维增强弹性导体的导电性是原始材料的四倍,因为富银层通过过滤效应自组装在顶部表面上。因此,由纳米纤维增强弹性导体和褶皱结构制成的可拉伸电极具有出色的循环耐久性和高导电性,可拉伸至 800%。在 5000 次拉伸循环(50%应变)后,循环降解率()仍保持在 0.56,而初始电导率和方阻分别为 9903 S cm 和 0.047 Ω sq。通过利用高导电性和耐用的弹性导体作为传感器电极和电线,可以展示贴身的多模式生理感应套装。成功演示了在举重练习过程中持续进行长时间的心电图、肌电图和运动监测,而信号质量没有明显下降。