Hysteresis-Free, Elastic, and Tough Hydrogel with Stretch-Rate Independence and High Stability in Physiological Conditions

被引:11
作者
Ji, Donghwan [1 ]
Kim, Dong-Yeong [2 ]
Fan, Ziwen [1 ]
Lee, Chang-Soo [2 ]
Kim, Jaeyun [1 ,3 ,4 ,5 ]
机构
[1] Sungkyunkwan Univ SKKU, Sch Chem Engn, Suwon 16419, South Korea
[2] Chungnam Natl Univ CNU, Dept Chem Engn & Appl Chem, 99 Daehak Ro, Daejeon 34134, South Korea
[3] Sungkyunkwan Univ SKKU, Samsung Adv Inst Hlth Sci Technol SAIHST, Dept Hlth Sci & Technol, Suwon 16419, South Korea
[4] Sungkyunkwan Univ SKKU, Biomed Inst Convergence SKKU BICS, Suwon 16419, South Korea
[5] Sungkyunkwan Univ SKKU, Inst Quantum Biophys IQB, Suwon 16419, South Korea
基金
新加坡国家研究基金会;
关键词
entanglement; hydrogel; hysteresis-free; mechanical properties; nanocomposite; SILICA NANOPARTICLES; FRACTURE; POLYMERS; MODEL;
D O I
10.1002/smll.202309217
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Many existing synthetic hydrogels are inappropriate for repetitive motions because of large hysteresis, and their mechanical properties in warm and saline physiological conditions remain understudied. In this study, a stretch-rate-independent, hysteresis-free, elastic, and tough nanocomposite hydrogel that can maintain its mechanical properties in phosphate-buffered saline of 37 degrees C similar to warm and saline conditions of the human body is developed. The strength, stiffness, and toughness of the hydrogel are simultaneously reinforced by biomimetic silica nanoparticles with a surface of embedded circular polyamine chains. Such distinctive surfaces form robust interfacial interactions by local topological folding/entanglement with the polymer chains of the matrix. Load transfer from the soft polymer matrix to stiff nanoparticles, along with the elastic sliding/unfolding/disentanglement of polymer chains, overcomes the traditional trade-off between strength/stiffness and toughness and allows for hysteresis-free, strain-rate-independent, and elastic behavior. This robust reinforcement is sustained in warm phosphate-buffered saline. These properties demonstrate the application potential of the developed hydrogel as a soft, elastic, and tough bio-strain sensor that can detect dynamic motions across various deformation speeds and ranges. The findings provide a simple yet effective approach to developing practical hydrogels with a desirable combination of strength/stiffness and toughness, in a fully swollen and equilibrated state. Nanocomposite hydrogels exhibit stretch-rate-independent behavior, hysteresis-free elasticity, and outstanding toughness while maintaining its mechanical performances in warm saline conditions. The incorporation of biomimetic silica nanoparticles with surfaces of embedded circular polyamine chains into polyacrylamide matrix reinforces hydrogel mechanical properties, thereby overcoming the traditional trade-off between strength/stiffness and toughness, and further achieving nearly perfect elasticity with no hysteresis and deformation-rate independence.image
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页数:10
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