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Tough, Transparent, and Slippery PVA Hydrogel Led by Syneresis

Desheng LiuCenter of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 ChinaYufei CaoSchool of Chemistry Xi'an Jiaotong University Xi'an 710049 ChinaPan JiangState Key Laboratory of Solid Lubrication Lanzhou Institute of Chemical Physics Chinese Academy of Sciences Lanzhou 730000 ChinaYixian WangSchool of Chemical Engineering Northwest Minzu University Lanzhou 730030 ChinaYaozhong LuState Key Laboratory of Solid Lubrication Lanzhou Institute of Chemical Physics Chinese Academy of Sciences Lanzhou 730000 ChinaZhongying JiShandong Laboratory of Yantai Advanced Materials and Green Manufacturing Yantai Zhongke Research Institute of Advanced Materials and Green Chemical Engineering Yantai 264006 ChinaXiaolong WangCenter of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 ChinaWeimin LiuCenter of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 China
2023en
ABI

Аннотация

Abstract Slippery and transparent polyvinyl alcohol (PVA) hydrogels with mechanical robustness exhibit broad applications in artificial biological soft tissues, flexible wearable electronics, and implantable biomedical devices. Most of the current PVA hydrogels, however, are unable to integrate these features, which compromises its performance in biological and engineering applications. To achieve such purpose, herein, a novel tactic is proposed, salting‐out‐after‐syneresis of PVA, to realize a mechanically robust and highly transparent slippery PVA hydrogel. The syneresis of PVA sol is first conducted to form highly dense and transparent PVA polymer networks, then the salting‐out effect tunes the aggregation of the polymer chains to rapidly induce the phase separation and crystallization. The resultant hydrogels show the transparency up to 98% in the visible region, the tribological coefficient down to 0.0081, and the excellent mechanical properties with strength, modulus, and toughness of 26.72 ± 1.05, 6.66 ± 0.29 MPa, and 55.21 ± 1.62 MJ m −3 , respectively. To reveal the potentials, PVA contact lens that combine remarkable lubrication, anti‐protein adhesion, biocompatibility, and drug‐loading functions are demonstrated. This strategy provides a simple and new avenue for developing the mechanically robust, transparent, and hydrated hydrogels, showing the potential in biomedicine and wearable devices.

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