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教授 博士生导师  
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教师拼音名称:shixinyan

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所在单位:橡塑材料与工程省部共建教育部重点实验室

职务:橡塑材料与工程省部共建教育部重点实验室常务副主任

学历:博士研究生

办公地点:青岛市舞阳路51-1号青岛科技大学橡塑楼406房间

性别:女

联系方式:0532-84022468

学位:博士

职称:教授

毕业院校:青岛科技大学

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Ion Clusters-Driven Strong and Acid/Alkali/Freezing-Tolerant Conductive Hydrogels for Flexible Sensors in Extreme Environments

关键字:TOUGH

摘要:Supramolecular polymer hydrogels, exhibiting wide applications in flexible sensing, wearable electronics, artificial skin, etc., often require complex molecule and component design to adapt extreme environments. Most supramolecular polymer hydrogels currently, however, are unable to satisfy the harsh demands ascribed to their poor mechanical properties and chemical stability. Herein, this study demonstrates a novel strategy to fabricate superstrong polyvinyl alcohol (PVA) hydrogels with densely supramolecular polymer networks (SPNs) and complexation, induced by simple deprotonation and reconfiguration of ion clusters (ICs). Such strategy enables the PVA hydrogels with high strength (9.64 & PLUSMN; 0.5 MPa), compressibility, and recoverability (load objects over & AP;10000 times more than its weight), resistance to various solvents, freezing tolerance (keep flexible and conductive even at -50 & DEG;C) and many other performances. Notably, the properties of resultant hydrogels surpass majority reported, tackling a long-standing dilemma both mechanical properties and stability for PVA hydrogels. A proof-of-concept spider robot is assembled by 3D printed model, which achieves successfully signal acquisition in different extreme conditions. In this study the multifunctional PVA hydrogels are envisioned as a simple and universal strategy for sensors in various conditions, which is significant for the exploration in extreme environments that are not easily accessible to humans, such as the North and South Poles and solvent leakage area. A facile yet simple method to fabricate strong polyvinyl alcohol (PVA) based hydrogels with supramolecular polymer networks (SPNs) is developed and used as sensitive sensors in a variety of moderate and extreme environments. The hydrogels reach ultimate stresses of 9.64 & PLUSMN; 0.5 MPa and also have great freeze and heat resistance properties, chemical stability, and reprocessability.image

卷号:33

期号:50

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崂山校区 - 山东省青岛市松岭路99号   
四方校区 - 山东省青岛市郑州路53号   
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