弹性体
材料科学
形状记忆合金
形状记忆聚合物
高分子科学
复合材料
作者
D.H. Yoo,Joon Soo Han,Seung Sang Hwang,Jung‐Hyun Lee,Albert S. Lee
标识
DOI:10.1016/j.eurpolymj.2025.114098
摘要
• Biocompatible hydrophilic (PEG) and hydrophobic (PDMS) segments were employed. • The polymers were easily processible due to comparatively low T trans (50 °C) of PCL segments. • Tensile characterization exhibited exceptional elasticity (break strain > 2,000 %). • Recoverable shape-memory performance shown for in-vitro application. Stimuli-responsive and resilient shape memory polymers (SMPs) were developed to meet burgeoning demands for biomedical applications requiring biodegradable, shape-memory properties with elasticity. However, few studies have been carried out to engineer tunable mechanical properties into SMPs, which are crucial factors for wide applicability. In this study, a series of polyurethane-based elastomer networks derived cross-linked acrylate-terminated tri-block copolymers (BCPs) with varying internal block segment and block weight fraction with polycaprolactone were synthesized and their chemical, physical, surface, and shape-memory properties were characterized and good mechanical property (break strain > 2000 %), reversible shape-memory properties were observed. The strategy reported herein with tailorable hydrophilicity / hydrophobicity and mechanical property can be leveraged to boost the development of stimuli-responsive polymers and smart materials for future biomedical applications.
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