- 趙傳壯 教授
- 寧波大學
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- 寧波大學趙傳壯/蒙特利爾大學朱曉夏 MRC: UCST聚合物設計與應用的協(xié)同策略
- 寧波大學趙傳壯課題組在簇發(fā)光聚合物研究獲進展
- 寧波大學趙傳壯課題組 CM:主客體作用和陽離子-π作用協(xié)同構筑的超拉伸性和抗鹽水凝膠粘合劑
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Cold-induced shape memory hydrogels for strong and programmable artificial muscles
作者:Hua, Luqin
關鍵字:shape memory hydrogel;thermo-responsive;hydrophobic aggregation;cold-induced shape recovery;artificial muscles;
論文來源:期刊
發(fā)表時間:2022年
Thermo-responsive shape memory hydrogels generally achieve shape fixation at low temperatures, and shape recovery at high temperatures. However, these hydro-gels usually suffer from poor mechanical properties. Herein, we present a unique poly(acrylic acid)/calcium acetate shape memory hydrogel with cold-induced shape recovery performances as ultrastrong artificial muscles. Since the acetate groups could form aggregate at high temperatures and thus induce the association of the hydrogel network, the hydrogel can be fixed into a temporary shape upon heating and recover to its original shape in a cold environment. Moreover, a programmable shape recovery process is realized by adjusting the shape fixing time. In addition, the unique shape memory process enables the application demonstration as bio-inspired artificial muscles with an ultrahigh work density of 45.2 kJ m(-3), higher than that of biological muscles (similar to 8 kJ m(-3)).
關鍵字:shape memory hydrogel;thermo-responsive;hydrophobic aggregation;cold-induced shape recovery;artificial muscles;
論文來源:期刊
發(fā)表時間:2022年
Thermo-responsive shape memory hydrogels generally achieve shape fixation at low temperatures, and shape recovery at high temperatures. However, these hydro-gels usually suffer from poor mechanical properties. Herein, we present a unique poly(acrylic acid)/calcium acetate shape memory hydrogel with cold-induced shape recovery performances as ultrastrong artificial muscles. Since the acetate groups could form aggregate at high temperatures and thus induce the association of the hydrogel network, the hydrogel can be fixed into a temporary shape upon heating and recover to its original shape in a cold environment. Moreover, a programmable shape recovery process is realized by adjusting the shape fixing time. In addition, the unique shape memory process enables the application demonstration as bio-inspired artificial muscles with an ultrahigh work density of 45.2 kJ m(-3), higher than that of biological muscles (similar to 8 kJ m(-3)).