State Key Laboratory of Structural Analysis, Optimization and CAE Software for Industrial Equipment, National Engineering Research Center for Advanced Polymer Processing Technology, The Key Laboratory of Advanced Materials Processing & Mold of Ministry of Education, Zhengzhou University, Zhengzhou, Henan 450002, China.
State Key Laboratory of Structural Analysis, Optimization and CAE Software for Industrial Equipment, National Engineering Research Center for Advanced Polymer Processing Technology, The Key Laboratory of Advanced Materials Processing & Mold of Ministry of Education, Zhengzhou University, Zhengzhou, Henan 450002, China.
Int J Biol Macromol. 2024 Nov;281(Pt 3):136422. doi: 10.1016/j.ijbiomac.2024.136422. Epub 2024 Oct 10.
It is a significant challenge to obtain hydrogels simultaneously with low tensile energy dissipation, high compressive resilience and long durability. Herein, the uniform dynamic nanospheres (Sil-4H) derived from 4-Hydroxybutyl acrylate glycidyl ether grafted silk fibroin is designed to overcome this issue. Due to its uniform and dynamic characteristic, Sil-4H could endow hydrogel with homogeneous multiscale structure and produce unique framework effect. Thus, transparent Sil-4H crosslinked acrylamide hydrogel doped with Ag nanowires APS/AgNW exhibits a high stretchability (1260 %) and outstanding elastic resilience. The tensile energy dissipation ratio maintains a low value of 9 % across a wide 800 % strain range. A high compression resilience ratio of 92.2 % is kept after ten compression cycles under 90 % compressive strain. The orderly AgNWs motion guided by framework effect also make it be used as both tensile and compressive sensors and exhibits high gauge factor of 7.35, outstanding compression sensitivity of 30.379 kPa and excellent durability (up to 2000 cycles). The detection or other applications based on both two sensing modes are also demonstrated. In a word, this work affords a general strategy to achieve high-performance hydrogel based on uniform dynamic nanospheres which exhibits great potential in the applications of flexible wearable strain sensors.
获得同时具有低拉伸能量耗散、高压缩回弹性和长耐久性的水凝胶是一项重大挑战。在此,设计了一种由 4-羟基丁基丙烯酰氧基乙基缩水甘油醚接枝丝素得到的均匀动态纳米球(Sil-4H)来克服这个问题。由于其均匀和动态的特性,Sil-4H 可以赋予水凝胶均匀的多尺度结构并产生独特的框架效应。因此,透明的 Sil-4H 交联丙烯酰胺水凝胶掺杂 Ag 纳米线 APS/AgNW 表现出高拉伸性(1260%)和出色的弹性回弹性。在 800%的宽应变范围内,拉伸能量耗散比保持在 9%的低值。在 90%压缩应变下经过十次压缩循环后,仍保持 92.2%的高压缩回弹性比。框架效应引导的有序 AgNW 运动也使其可用作拉伸和压缩传感器,并表现出高应变系数 7.35、出色的压缩灵敏度 30.379kPa 和优异的耐用性(可达 2000 次循环)。还展示了基于这两种传感模式的检测或其他应用。总之,这项工作提供了一种基于均匀动态纳米球的实现高性能水凝胶的通用策略,在柔性可穿戴应变传感器的应用中具有巨大的潜力。