Naikwadi Amol Tarachand, Sharma Bhuwanesh Kumar, Bhatt Keyur D, Mahanwar Prakash A
Department of Polymer and Surface Engineering, Institute of Chemical Technology, Mumbai, India.
Department of Chemistry, Faculty of Science, MUIS, Ganpat University, Mehsana, India.
Front Chem. 2022 Mar 14;10:837111. doi: 10.3389/fchem.2022.837111. eCollection 2022.
The polymeric properties are tailored and enhanced by high energy radiation processing, which is an effective technique to tune the physical, chemical, thermal, surface, and structural properties of the various thermoplastic and elastomeric polymeric components. The gamma and electron beam radiation are the most frequent radiation techniques used for crosslinking, compatibilizing, and grafting of various polymer blends and composites systems. The gamma radiation-induced grafting and crosslinking are the effective, rapid, clean, user-friendly, and well-controlled techniques for the polymeric materials for their properties improvement for high performance applications such as nuclear, automobile, electrical insulation, ink curing, surface modification, food packaging, medical, sterilization, and health-care in a different environment. Similarly, electron beam radiations crosslinking has been a well-known technique for properties development and has economic benefits over chemical crosslinking techniques. This review focuses on the development of polymeric multi component systems (functionalized polymer, blends, and nanohybrids), where partially nanoscale clay incorporation can achieve the desired properties, and partially by controlled high energy radiations crosslinking of blends and nanocomposites. In this review, various investigations have been studied on the development and modifications of polymeric systems, and controlled dose gamma radiation processed the polymer blends and clay-induced composites. Radiation induced grafting of the various monomers on the polymer backbone has been focused. Similarly, comparative studies of gamma and electron beam radiation and their effect on property devlopment have been focused. The high energy radiation modified polymers have been used in several high performance sectors, including automotive, wire and cable insulation, heat shrinkable tube, sterilization, biomedical, nuclear and space applications.
通过高能辐射处理来定制和增强聚合物性能,这是一种有效技术,可调节各种热塑性和弹性体聚合物组分的物理、化学、热、表面及结构性能。伽马射线和电子束辐射是用于各种聚合物共混物和复合材料体系交联、增容及接枝的最常用辐射技术。伽马辐射诱导的接枝和交联是有效、快速、清洁、用户友好且可控的技术,可用于改善聚合物材料的性能,以用于高性能应用,如核、汽车、电气绝缘、油墨固化、表面改性、食品包装、医疗、灭菌及不同环境下的医疗保健。同样,电子束辐射交联一直是一种众所周知的性能开发技术,且相较于化学交联技术具有经济效益。本综述聚焦于聚合物多组分体系(功能化聚合物、共混物和纳米杂化物)的发展,其中部分纳米级粘土的掺入可实现所需性能,部分则通过共混物和纳米复合材料的可控高能辐射交联来实现。在本综述中,已对聚合物体系的发展和改性进行了各种研究,且可控剂量的伽马辐射处理了聚合物共混物和粘土诱导的复合材料。重点关注了各种单体在聚合物主链上的辐射诱导接枝。同样,也重点关注了伽马射线和电子束辐射的比较研究及其对性能发展的影响。高能辐射改性聚合物已用于多个高性能领域,包括汽车、电线和电缆绝缘、热缩管、灭菌、生物医学、核及太空应用。