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[해외논문] Shape Memory Effect in Polymeric Materials: Mechanisms and Optimization 원문보기

Procedia IUTAM, v.12, 2015년, pp.83 - 92  

Zhou, Y. ,  Huang, W.M.

Abstract AI-Helper 아이콘AI-Helper

The shape memory effect (SME) has attracted more and more attention in recent years. A few shape memory related new phenomena have also been identified. This paper aims to reveal the basic working mechanisms for the SME in polymeric materials, and discuss the key issues in optimization of the shape ...

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참고문헌 (34)

  1. Otsuka, K. and C.M. Wayman, eds. Shape Memory Materials. 1998, Cambridge University Press: Cambridge. 

  2. 10.1016/S1369-7021(10)70128-0 Huang, W.M., et al., Shape memory materials. Materials Today, 2010. 13(7-8): p. 54-61. 

  3. 10.1023/A:1004674630156 Wei, Z.G., R. Sandstrom, and S. Miyazaki, Shape memory materials and hybrid composites for smart systems - Part II Shape-memory hybrid composites. Journal of Materials Science, 1998. 33(15): p. 3763-3783. 

  4. 10.1023/A:1004692329247 Wei, Z.G., R. Sandstrom, and S. Miyazaki, Shape-memory materials and hybrid composites for smart systems - Part I Shape-memory materials. Journal of Materials Science, 1998. 33(15): p. 3743-3762. 

  5. 10.1007/978-3-642-12359-7 Lendlein, A., Shape-memory Polymers2010: Springer-Verlag Berlin Heidelberg. 

  6. 10.1016/j.matdes.2011.04.065 Sun, L., et al., Stimulus-responsive shape memory materials: a review. Materials and Design, 2012. 33: p. 577-640. 

  7. 10.1007/s10965-012-9952-z Huang, W.M., et al., Thermo/chemo-responsive shape memory effect in polymers: a sketch of working mechanisms, fundamentals and optimization. Journal of Polymer Research, 2012. 19(9): p. 9952. 

  8. 10.1007/s10965-013-0150-4 Wu, X.L., W.M. Huang, and H.X. Tan, Characterization of shape recovery via creeping and shape memory effect in ether-vinyl acetate copolymer (EVA). Journal of Polymer Research, 2013. 20: p. 150. 

  9. 10.1016/j.addr.2012.06.004 Huang, W.M., et al., Shaping tissue with shape memory materials. Advanced Drug Delivery Reviews, 2013. 65(4): p. 515-535. 

  10. 10.1016/j.matdes.2013.08.016 Zhang, J.L., et al., Thermo-/chemo-responsive shape memory/change effect in a hydrogel and its composites. Materials and Design, 2014. 53: p. 1077-1088. 

  11. 10.1016/j.matdes.2014.03.028 Huang, W.M., et al., Instability/collapse of polymeric materials and their structures in stimulus-induced shape/surface morphology switching. Materials and Design, 2014. 59: p. 176-192. 

  12. 10.3390/polym5041169 Wu, X., et al., Mechanisms of the Shape Memory Effect in Polymeric Materials. Polymers, 2013. 5(4): p. 1169-1202. 

  13. 10.1063/1.3291054 Park, H., et al., Memory effect of a single-walled carbon nanotube on nitride-oxide structure under various bias conditions. Applied Physics Letters, 2010. 96(2): p. 023101. 

  14. 10.1016/j.sna.2004.02.027 Huang, W.M., et al., Micro NiTi-Si cantilever with three stable positions. Sensors and Actuators a-Physical, 2004. 114(1): p. 118-122. 

  15. 10.1016/j.reactfunctpolym.2012.07.013 Wang, C.C., et al., Chemically induced morphing in polyurethane shape memory polymer micro fibers/springs. Reactive & Functional Polymers, 2012. 72: p. 757-764. 

  16. 10.1002/j.1941-9635.2008.tb00302.x Toensmeier, P.A., Shape memory polymers reshape product design. Plastics Engineering, 2005. 61(3): p. 10-11. 

  17. 10.1088/0960-1317/21/6/067007 Zhao, Y., W.M. Huang, and Y.Q. Fu, Formation of micro/nano-scale wrinkling patterns atop shape memory polymers. Journal of Micromechanics and Microengineering, 2011. 21(6): p. 067007. 

  18. 10.1021/am201727a Li, J.J., et al., Unique Aspects of a Shape Memory Polymer As the Substrate for Surface Wrinkling. ACS Applied Materials & Interfaces, 2012. 4(2): p. 598-603. 

  19. 10.1002/adma.201002825 Xie, T., et al., Encoding Localized Strain History Through Wrinkle Based Structural Colors. Advanced Materials, 2010. 22(39): p. 4390-4394. 

  20. 10.1016/j.polymer.2005.12.051 Yang, B., et al., Effects of moisture on the thermomechanical properties of a polyurethane shape memory polymer. Polymer, 2006. 47(4): p. 1348-1356. 

  21. 10.1021/ma101413j Itagaki, H., et al., Water-Induced Brittle-Ductile Transition of Double Network Hydrogels. Macromolecules, 2010. 43(22): p. 9495-9500. 

  22. 10.1039/c2sm07233e Wang, Q., et al., Super-tough double-network hydrogels reinforced by covalently compositing with silica-nanoparticles. Soft Matter, 2012. 8(22): p. 6048-6056. 

  23. 10.1002/pola.24794 Sun, L., et al., Optimization of the shape memory effect in shape memory polymers. Journal of Polymer Science Part A: Polymer Chemistry, 2011. 49(16): p. 3574-3581. 

  24. 10.1016/j.compscitech.2012.03.027 Wang, C.C., et al., Cooling-/water-responsive shape memory hybrids. Composites Science and Technology, 2012. 72(10): p. 1178-1182. 

  25. 10.3144/expresspolymlett.2011.40 Fan, K., et al., Water-responsive shape memory hybrid: design concept and demonstration. eXPRESS Polymer Letters, 2011. 5(5): p. 409-416. 

  26. 10.1007/s11665-012-0374-1 Wang, C.C., et al., Repeated instant self-healing shape memory composites. Journal of Materials Engineering and Performance, 2012. 21(12): p. 2663-2669. 

  27. 10.1016/j.radphyschem.2005.10.004 Zhu, G.M., et al., Shape memory behaviour of radiation-crosslinked PCL/PMVS blends. Radiation Physics and Chemistry, 2006. 75(3): p. 443-448. 

  28. 10.1016/j.radphyschem.2004.11.006 Zhu, G.M., et al., Effect of gamma-radiation on crystallization of polycaprolactone. Radiation Physics and Chemistry, 2005. 74(1): p. 42-50. 

  29. 10.1002/app.20989 Zhu, G.M., et al., Shape-memory behaviors of sensitizing radiation-crosslinked polycaprolactone with polyfunctional poly(ester acrylate). Journal of Applied Polymer Science, 2005. 95(3): p. 634-639. 

  30. 10.1073/pnas.0608586103 Bellin, I., et al., Polymeric triple-shape materials. Proceedings of the National Academy of Sciences of the United States of America, 2006. 103(48): p. 18043-18047. 

  31. 10.1002/adfm.200800850 Behl, M., et al., One-step process for creating triple-shape capability of AB polymer networks. Advanced Functional Materials, 2009. 19(1): p. 102-108. 

  32. 10.1038/nature08863 Xie, T., Tunable polymer multi-shape memory effect. Nature, 2010. 464(7286): p. 267-270. 

  33. 10.1039/c0sm00236d Sun, L. and W.M. Huang, Mechanisms of the multi-shape memory effect and temperature memory effect in shape memory polymers. Soft Matter, 2010. 6(18): p. 4403-4406. 

  34. 10.1088/0964-1726/22/12/125023 Wu, X.L., et al., Two-step shape recovery in heating-responsive shape memory polytetrafluoroethylene and its thermally assisted self-healing. Smart Materials and Structures, 2013. 22(12): p. 125023. 

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