Radiation shielding polymer composites: Ray-interaction mechanism, structural design, manufacture and biomedical applications

Nuclear technology has expanded from the original weapon of war to all aspects of social development, finding wide applications in various industries such as medical diagnostics, nuclear power plants and military. Although it brings infinite convenience to industrial and medical fields, the health h...

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Main Authors: Qiru Chang, Shaoyun Guo, Xianlong Zhang
Format: Article
Language:English
Published: Elsevier 2023-09-01
Series:Materials & Design
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127523006688
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author Qiru Chang
Shaoyun Guo
Xianlong Zhang
author_facet Qiru Chang
Shaoyun Guo
Xianlong Zhang
author_sort Qiru Chang
collection DOAJ
description Nuclear technology has expanded from the original weapon of war to all aspects of social development, finding wide applications in various industries such as medical diagnostics, nuclear power plants and military. Although it brings infinite convenience to industrial and medical fields, the health hazards of nuclear radiation have always troubled the professionals. It has been a long-standing challenge to fabricate lightweight shielding composites with high shielding efficiency. Compared with traditional methods, recently, the new hybrid nanoparticles, orientation stack and controllable periodic distribution of fillers as well as spatially confined composites have aroused great interest of researchers. In this review, the newly emerged manufacturing and evaluation strategies, as well as recent advances on X-ray, γ-ray, and neutron shielding polymer composites are explored. Notably, the focus lies on the biomedical applications of radiation shielding polymer composites and novel polymer drugs for in vivo radioprotection. Additionally, a promising direction is highlighted for the comprehensive evaluation of the effectiveness of radiation shielding materials, considering both energy attenuation ability and radiation dose accumulation simultaneously. Topics regarding ray-interaction mechanism, radiation injury, structural design, manufacturing strategy and biomedical applications are also discussed in detail.
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spelling doaj.art-fae9a808fa2348ee8672afa1b5b74a332023-09-29T04:43:33ZengElsevierMaterials & Design0264-12752023-09-01233112253Radiation shielding polymer composites: Ray-interaction mechanism, structural design, manufacture and biomedical applicationsQiru Chang0Shaoyun Guo1Xianlong Zhang2The State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute of Sichuan University, Chengdu 610065, ChinaThe State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute of Sichuan University, Chengdu 610065, ChinaCorresponding author.; The State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute of Sichuan University, Chengdu 610065, ChinaNuclear technology has expanded from the original weapon of war to all aspects of social development, finding wide applications in various industries such as medical diagnostics, nuclear power plants and military. Although it brings infinite convenience to industrial and medical fields, the health hazards of nuclear radiation have always troubled the professionals. It has been a long-standing challenge to fabricate lightweight shielding composites with high shielding efficiency. Compared with traditional methods, recently, the new hybrid nanoparticles, orientation stack and controllable periodic distribution of fillers as well as spatially confined composites have aroused great interest of researchers. In this review, the newly emerged manufacturing and evaluation strategies, as well as recent advances on X-ray, γ-ray, and neutron shielding polymer composites are explored. Notably, the focus lies on the biomedical applications of radiation shielding polymer composites and novel polymer drugs for in vivo radioprotection. Additionally, a promising direction is highlighted for the comprehensive evaluation of the effectiveness of radiation shielding materials, considering both energy attenuation ability and radiation dose accumulation simultaneously. Topics regarding ray-interaction mechanism, radiation injury, structural design, manufacturing strategy and biomedical applications are also discussed in detail.http://www.sciencedirect.com/science/article/pii/S0264127523006688Radiation shieldingPolymersStructural designManufacturing strategyBiomedical application
spellingShingle Qiru Chang
Shaoyun Guo
Xianlong Zhang
Radiation shielding polymer composites: Ray-interaction mechanism, structural design, manufacture and biomedical applications
Materials & Design
Radiation shielding
Polymers
Structural design
Manufacturing strategy
Biomedical application
title Radiation shielding polymer composites: Ray-interaction mechanism, structural design, manufacture and biomedical applications
title_full Radiation shielding polymer composites: Ray-interaction mechanism, structural design, manufacture and biomedical applications
title_fullStr Radiation shielding polymer composites: Ray-interaction mechanism, structural design, manufacture and biomedical applications
title_full_unstemmed Radiation shielding polymer composites: Ray-interaction mechanism, structural design, manufacture and biomedical applications
title_short Radiation shielding polymer composites: Ray-interaction mechanism, structural design, manufacture and biomedical applications
title_sort radiation shielding polymer composites ray interaction mechanism structural design manufacture and biomedical applications
topic Radiation shielding
Polymers
Structural design
Manufacturing strategy
Biomedical application
url http://www.sciencedirect.com/science/article/pii/S0264127523006688
work_keys_str_mv AT qiruchang radiationshieldingpolymercompositesrayinteractionmechanismstructuraldesignmanufactureandbiomedicalapplications
AT shaoyunguo radiationshieldingpolymercompositesrayinteractionmechanismstructuraldesignmanufactureandbiomedicalapplications
AT xianlongzhang radiationshieldingpolymercompositesrayinteractionmechanismstructuraldesignmanufactureandbiomedicalapplications