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Visible light-curable polymers for biomedical applications 被引量:3

Visible light-curable polymers for biomedical applications
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摘要 Photocurable systems, which offer advantages such as microfabrication and in situ fabrication, have been widely used as dental restorative materials. Because the visible light-curable(VLC) system causes no biological damage, it is popular as a dental material and is being investigated by many researchers for other medical applications. Here, the principle of the VLC system is explained and recent progress in key components including photoinitiators, monomers, macromers, and prepolymers is discussed. Finally, biomedical applications for drug delivery and soft tissue engineering are reviewed. Considering the recent development of VLC systems, its importance in the field of medical applications is expected to continue to increase in the future. Photocurable systems, which offer advantages such as microfabrication and in situ fabrication, have been widely used as dental restorative materials. Because the visible light-curable (VLC) system causes no biological damage, it is popular as a dental material and is being investigated by many researchers for other medical applications. Here, the principle of the VLC system is explained and recent progress in key components including photoinitiators, monomers, macromers, and prepolymers is discussed. Finally, biomedical applications for drug delivery and soft tissue engineering are reviewed. Considering the recent de- velopment of VLC systems, its importance in the field of medical applications is expected to continue to increase in the future.
出处 《Science China Chemistry》 SCIE EI CAS 2014年第4期510-521,共12页 中国科学(化学英文版)
基金 supported by the Foreign Postdoctoral Researcher program of RIKEN and JSPS KAKENHI(22220009)
关键词 visible light PHOTOCURING PHOTOINITIATOR POLYMER BIOMEDICINE 医疗应用 光固化聚合物 医学领域 大分子单体 固化系统 生物医学应用 牙科材料 微细加工
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  • 1Khademhosseini A, Langer R. Nanobiotechnology—Drug delivery and tissue engineering. Chem Eng Prog, 2006, 102: 38-42.
  • 2Langer R. Biomaterials for drug delivery and tissue engineering. Mrs Bull, 2006, 31: 477-485.
  • 3Goldberg M, Langer R, Jia XQ. Nanostructured materials for applications in drug delivery and tissue engineering. J Biomat Sci-PolymE, 2007, 18: 241-268.
  • 4Shi JJ, Votruba AR, Farokhzad OC, Langer R. Nanotechnology in drug delivery and tissue engineering: from discovery to applications. Nano Lett, 2010, 10: 3223-3230.
  • 5Moszner N, Salz U. New developments of polymeric dental composites. Prog Polym Sci, 2001, 26: 535-576.
  • 6Culbertson BM. New polymeric materials for use in glass-ionomer cements. J Dent, 2006, 34: 556-565.
  • 7Kramer N, Lohbauer U, Garcia-Godoy F, Frankenberger R. Light curing of resin-based composites in the LED era. Am J Dent, 2008, 21: 135-142.
  • 8Cramer NB, Stansbury JW, Bowman CN. Recent advances and developments in composite dental restorative materials. J Dent Res, 2011, 90: 402-416.
  • 9Leprince JG, Palin WM, Hadis MA, Devaux J, Leloup G. Progress in dimethacrylate-based dental composite technology and curing efficiency. Dent Mater, 2013, 29: 139-156.
  • 10Hoyle CE. Photocurable coatings. Acs Sym Ser, 1990, 417: 1-16.

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