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用于腐蚀抑制剂和持续药物递送的功能化石墨烯标记聚氨酯

Functionalized Graphene Tagged Polyurethanes for Corrosion Inhibitor and Sustained Drug Delivery.

作者信息

Patel Dinesh K, Senapati Sudipta, Mourya Punita, Singh Madan M, Aswal Vinod K, Ray Biswajit, Maiti Pralay

机构信息

Solid State Physics Division, Bhabha Atomic Research Centre, Trombay, Mumbai 400085, India.

Department of Chemistry, Institute of Science, Banaras Hindu University, Varanasi 221005, India.

出版信息

ACS Biomater Sci Eng. 2017 Dec 11;3(12):3351-3363. doi: 10.1021/acsbiomaterials.7b00342. Epub 2017 Nov 16.

Abstract

Surface functionalization of graphene oxide with sulfonate group and subsequent grafting with polyurethane chains leads to the significant improvement in the properties of polymer and modified graphene as a filler. Modification of graphene oxide is revealed through spectroscopy while grafting of polymer chain over sulfonated graphene is confirmed through H NMR and other techniques. Higher order of self-assembly phenomena is observed in nanohybrids as compared to pure polymer through greater interaction between polymer chain and sulfonated graphene. Significant improvement in corrosion inhibition phenomena is observed using nanohybrids at low concentration as compared to pure polymer indicating its superior efficiency as a corrosion inhibitor. Nanohybrids also exhibit better biocompatible nature in lower concentration of filler with considerable sustained release of drug vis-à-vis pure polymer suggest its potential to use as a biomaterial for tissue engineering applications.

摘要

用磺酸基团对氧化石墨烯进行表面功能化,随后接上聚氨酯链,可显著改善聚合物和作为填料的改性石墨烯的性能。通过光谱学揭示氧化石墨烯的改性,而通过核磁共振氢谱和其他技术证实聚合物链在磺化石墨烯上的接枝。与纯聚合物相比,由于聚合物链与磺化石墨烯之间的相互作用更强,在纳米杂化物中观察到更高阶的自组装现象。与纯聚合物相比,在低浓度下使用纳米杂化物时观察到缓蚀现象有显著改善,表明其作为缓蚀剂具有更高的效率。纳米杂化物在较低浓度的填料中也表现出更好的生物相容性,相对于纯聚合物,药物有相当程度的持续释放,这表明其有潜力用作组织工程应用的生物材料。

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