Development of New Polyimide/Spirulina Hybrid Materials: Preparation and Characterization

M. Aflori, Diana Serbezeanu, A. Ipate, A. Dobos, D. Rusu
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Abstract

This study presents the synthesis and characterization of polyimide (PI-2) films incorporated with spirulina powder for potential biomedical applications. The synthesis of PI-2 was achieved through a two-step polycondensation reaction using N-methyl-2-pyrrolidone (NMP) as the solvent. The incorporation of spirulina was systematically varied to investigate its effects on the structural and surface properties of the hybrid materials. Scanning electron microscopy revealed a tightly bound interface between spirulina and the PI-2 matrix, indicating effective dispersion and strong interfacial adhesion. Profilometry and Raman spectroscopy confirmed the homogeneous integration of spirulina within the polymer matrix, with resulting variations in surface roughness and chemistry. Contact angle measurements demonstrated altered wettability characteristics, with increased hydrophilicity observed with spirulina incorporation. Furthermore, blood component interaction studies indicated the variations in adhesion behavior observed for red blood cells, platelets, and plasma proteins. Water uptake studies revealed enhanced absorption capacity in PI-2 films loaded with spirulina, highlighting their potential suitability for applications requiring controlled hydration. Overall, this comprehensive characterization elucidates the potential of PI-2/spirulina hybrid materials for diverse biomedical applications, offering tunable properties that can be tailored to specific requirements.
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开发新型聚酰亚胺/螺旋藻杂化材料:制备与表征
本研究介绍了加入螺旋藻粉末的聚酰亚胺(PI-2)薄膜的合成和特性,这些薄膜具有潜在的生物医学应用价值。以 N-甲基-2-吡咯烷酮(NMP)为溶剂,通过两步缩聚反应合成了 PI-2。为了研究螺旋藻对混合材料结构和表面特性的影响,研究人员系统地改变了螺旋藻的加入量。扫描电子显微镜显示,螺旋藻与 PI-2 基质之间的界面紧密结合,表明其有效分散且界面附着力强。轮廓仪和拉曼光谱证实了螺旋藻在聚合物基质中的均匀整合,并由此产生了表面粗糙度和化学性质的变化。接触角测量结果表明,螺旋藻的润湿特性发生了变化,螺旋藻的亲水性增强。此外,血液成分相互作用研究表明,红细胞、血小板和血浆蛋白的粘附行为发生了变化。吸水研究表明,载入螺旋藻的 PI-2 薄膜具有更强的吸收能力,这突出表明它们可能适合需要控制水合作用的应用。总之,这项全面的表征阐明了 PI-2 螺旋藻杂化材料在各种生物医学应用中的潜力,它具有可调整的特性,可根据特定要求进行定制。
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