Zhou Xin, Rajeev Ashna, Subramanian Arunprabaharan, Li Yang, Rossetti Nicolò, Natale Giovanniantonio, Lodygensky Gregory A, Cicoira Fabio
Department of Chemical Engineering, Polytechnique Montréal, Montréal, Québec H3C 3A7, Canada.
Department of Chemical and Petroleum Engineering, Schulich School of Engineering, University of Calgary, 2500 University Dr. NW, T2N 1N4, Canada.
Acta Biomater. 2022 Feb;139:296-306. doi: 10.1016/j.actbio.2021.07.069. Epub 2021 Aug 5.
Flexible, self-healing and adhesive conductive materials with Young's modulus matching biological tissues are highly desired for applications in bioelectronics. Here, we report self-healing, stretchable, highly adhesive and conductive hydrogels obtained by mixing polyvinyl alcohol, sodium tetraborate and a screen printing paste containing the conducting polymer Poly (3,4-ethylenedioxythiophene) doped with polystyrene sulfonate (PEDOT:PSS) and diol additives. The as prepared hydrogels exhibited modelling ability, high adhesion on pig skin (1.96 N/cm), high plastic stretchability (>10000%), a moderate conductivity, a low compressive modulus (0.3-3.7 KPa), a good strain sensitivity (gauge factor = 3.88 at 500% strain), and remarkable self-healing properties. Epidermal patch electrodes prepared using one of our hydrogels demonstrated high-quality recording of electrocardiography (ECG) and electromyography (EMG) signal. Because of their straightforward fabrication, outstanding mechanical properties and possibility to combine the electrode components in a single material, hydrogels based on PVA, borax and PEDOT:PSS are highly promising for applications in bioelectronics and wearable electronics. STATEMENT OF SIGNIFICANCE: Soft materials with electrical conductivity are investigated for healthcare applications, such as electrodes to measure vital signs that can easily adapt to the shape and the movements of human skin. Conductive hydrogels (i.e. gels containing water) are ideal materials for this purpose due softness and flexibility. In this this work, we report hydrogels obtained mixing an electrically conductive polymer, a water-soluble biocompatible polymer and a salt. These materials show high adhesion on skin, electrical conductivity and ability to self-repair after a mechanical damage. These hydrogels were successfully used to fabricate electrode to measure cardiac and muscular electrical signals.
具有与生物组织相匹配的杨氏模量的柔性、自修复且具有粘性的导电材料在生物电子学应用中具有很高的需求。在此,我们报告了通过混合聚乙烯醇、硼酸钠以及一种包含掺杂有聚苯乙烯磺酸盐的导电聚合物聚(3,4-乙撑二氧噻吩)(PEDOT:PSS)和二醇添加剂的丝网印刷浆料而获得的自修复、可拉伸、高粘性且导电的水凝胶。所制备的水凝胶表现出成型能力、对猪皮的高粘附力(1.96 N/cm)、高塑性拉伸性(>10000%)、适度的导电性、低压缩模量(0.3 - 3.7 KPa)、良好的应变敏感性(在500%应变下的应变系数 = 3.88)以及显著的自修复性能。使用我们的一种水凝胶制备的表皮贴片电极展示了高质量的心电图(ECG)和肌电图(EMG)信号记录。基于聚乙烯醇、硼砂和PEDOT:PSS的水凝胶由于其简单的制备方法、出色的机械性能以及将电极组件组合在单一材料中的可能性,在生物电子学和可穿戴电子学应用中极具前景。重要意义声明:对具有导电性的软材料进行了医疗保健应用方面的研究,例如用于测量生命体征的电极,其能够轻松适应人体皮肤的形状和运动。导电水凝胶(即含水凝胶)因其柔软性和柔韧性是用于此目的的理想材料。在这项工作中,我们报告了通过混合导电聚合物、水溶性生物相容性聚合物和盐而获得的水凝胶。这些材料在皮肤上表现出高粘附力、导电性以及机械损伤后自我修复的能力。这些水凝胶已成功用于制造测量心脏和肌肉电信号的电极。