Xin Yue, Liang Jionghong, Ren Lantu, Gao Wenshuo, Qiu Weicheng, Li Zhenhan, Qu Baoliu, Peng Aijian, Ye Zhixin, Fu Jun, Zeng Guang, He Xin
School of Applied Physics and Materials, Wuyi University, 22 Dongcheng Village, Jiangmen 529020, Guangdong, P. R. China.
School of Materials Science and Engineering, Sun Yat-sen University, 135 Xingang Road West, Guangzhou 510275, Guangdong, P. R. China.
Biomacromolecules. 2023 Mar 13;24(3):1287-1298. doi: 10.1021/acs.biomac.2c01335. Epub 2023 Feb 6.
Ion conductive hydrogels (ICHs) have attracted great interest in the application of ionic skin because of their superior characteristics. However, it remains a challenge for ICHs to achieve balanced properties of high strength, large fracture strain, self-healing and freezing tolerance. In this study, a strong, stretchable, self-healing and antifreezing ICH was demonstrated by rationally designing a multiphysically cross-linked network structure consisting of the hydrophobic association, metal-ion coordination and chain entanglement among poly(acrylic acid) (PAA) polymer chains. The deliberately designed Brij S 100 acrylate (Brij-100A) micelle cross-linker can effectively dissipate energy and endow hydrogels with desirable stretchability. The self-healing ability of hydrogels originates from the reversible hydrophobic association in micelles and Fe-COO coordination. After the addition of NaCl, the chain-entangled physical network caused by the salting-out effect can both enhance mechanical strength and promote electron transport. With the synergy of hydrophobic association, mental-ligand coordination and chain entanglement, the PAA/Brij-100A/Fe/NaCl (PAA/BA/Fe/NaCl) hydrogels exhibited a high tensile strain of 1140%, a tensile strength of 0.93 MPa and a toughness of 3.48 MJ m. Besides, the PAA/BA/Fe/NaCl hydrogels exhibited a high conductivity of 0.43 S m and good freezing resistance. The ionic skin based on the PAA/BA/Fe/NaCl hydrogels showed high sensitivity (GF = 5.29), wide strain range (0-950%), fast response time (220 ms) and good stability. Also, the self-healing ability of the ionic skin can significantly prolong its service time, and the antifreezing property can broaden its applicable temperature. This study offers new insight into the design of multifunctional ionic skin for wearable electronics.
离子导电水凝胶(ICHs)因其优异的特性而在离子皮肤应用中引起了极大的关注。然而,对于ICHs来说,要实现高强度、大断裂应变、自愈合和抗冻性等性能的平衡仍然是一个挑战。在本研究中,通过合理设计一种由聚丙烯酸(PAA)聚合物链之间的疏水缔合、金属离子配位和链缠结组成的多物理交联网络结构,展示了一种强韧、可拉伸、自愈合和抗冻的ICH。精心设计的Brij S 100丙烯酸酯(Brij-100A)胶束交联剂可以有效地耗散能量并赋予水凝胶所需的拉伸性。水凝胶的自愈合能力源于胶束中可逆的疏水缔合和Fe-COO配位。加入NaCl后,盐析效应引起的链缠结物理网络既能提高机械强度又能促进电子传输。通过疏水缔合、金属-配体配位和链缠结的协同作用,PAA/Brij-100A/Fe/NaCl(PAA/BA/Fe/NaCl)水凝胶表现出1140%的高拉伸应变、0.93 MPa的拉伸强度和3.48 MJ m的韧性。此外,PAA/BA/Fe/NaCl水凝胶表现出0.43 S m的高电导率和良好的抗冻性。基于PAA/BA/Fe/NaCl水凝胶的离子皮肤表现出高灵敏度(GF = 5.29)、宽应变范围(0-950%)、快速响应时间(220 ms)和良好的稳定性。而且,离子皮肤的自愈合能力可以显著延长其使用寿命,抗冻性能可以拓宽其适用温度范围。本研究为可穿戴电子产品的多功能离子皮肤设计提供了新的见解。