材料科学
复合材料
电磁屏蔽
涂层
生物相容性
复合数
固化(化学)
应力屏蔽
共价键
紫外线固化
聚合
色散(光学)
生物相容性材料
弹性体
动态力学分析
热的
填料(材料)
丙烯酰胺
聚丙烯酰胺
聚合物
作者
Hao Zhang,Yifan Liu,Qiang Yuan,Nuo Xu,Wenjie Ma,Chunxiang Xu,Xingwei Sun,Yong Jin,Shuwang Wu
标识
DOI:10.1021/acsami.5c15186
摘要
With the rapid advancement of radiation technology in nuclear safety, industrial inspection, and medical applications, there is a growing and urgent demand for biocompatible radiation-shielding coatings. This study addresses the challenge of filler sedimentation at high loadings by utilizing a shear-thinning precursor. This precursor, comprising acrylamide (AM), cross-linker, thermal initiator, sodium alginate, and hyaluronic acid, exhibits liquid behavior under shear but solidifies without force due to dynamic Fe 3+ -carboxyl coordination cross-linking facilitated by an Fe 3+ -EDTA complex. This property enables the homogeneous dispersion of high-content X-ray shielding fillers (Bi 2 O 3 and BaSO 4 ) within the precursor and allows for its uniform coating onto substrates with complex geometries. Subsequent thermal curing initiates polymerization of AM, forming a covalently cross-linked polyacrylamide second network, resulting in a robust double-network composite hydrogel. Systematic investigation revealed that a hydrogel containing 40 wt % Bi 2 O 3 and BaSO 4 achieved optimal X-ray shielding performance. With a 5 mm thickness, it attained complete attenuation of X-rays below 80 kV and achieved 92.2% shielding efficiency at 100 kV. Meanwhile, it exhibits excellent mechanical properties, stretching to 2000% of its original length while maintaining a stress of 1.30 MPa. Furthermore, the developed hydrogel coating demonstrated favorable biocompatibility and antibacterial properties, supporting its potential for biomedical applications.
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