小旋翼机
材料科学
聚乳酸
降级(电信)
聚乙二醇
复合材料
聚苯乙烯
化学工程
聚合物
PEG比率
超材料
粘弹性
沉积(地质)
互连性
融合
玻璃化转变
组织工程
共聚物
拉曼光谱
热的
工作(物理)
纳米技术
纵横比(航空)
形状记忆聚合物
脚手架
作者
Roozbeh Aghabarari,Reza Alizadeh,Mahboubeh Bohlouli,Juan P. Fernandéz‐Blázquez
标识
DOI:10.1021/acs.biomac.6c00690
摘要
Smart bone scaffolds require body-safe actuation, controlled degradation, and early mechanical support. Here, gyroid scaffolds were fabricated by fused deposition modeling using a metamaterial approach to couple shape recovery with mechanistically tunable degradation. Polylactic acid (PLA) was plasticized with 10 wt % polyethylene glycol (PEG) to lower the glass transition temperature ( T g ), while 2.5 and 5 wt % magnesium (Mg) particles were incorporated to regulate degradation, reinforcement, and biocompatibility. Thermal and viscoelastic analyses confirmed T g reduction to ∼44 °C, enabling body-safe activation. PLA/10PEG/2.5Mg achieved the best shape-memory response, with a shape recovery ratio ( R r ) of 90.4% within ∼71 s. Physicochemical and mechanical degradation tracking over 12 weeks revealed that PEG leaching, Mg corrosion, and gyroid interconnectivity synergistically promoted bulk-like degradation, yielding up to ∼600% higher weight loss and mechanical retention. Cytocompatibility further improved with Mg incorporation. This work establishes a mechanistic framework for codesigning degradation and shape recovery in 4D-printed PLA/PEG/Mg scaffolds.
科研通智能强力驱动
Strongly Powered by AbleSci AI