49
Chen, S., Hu, J., Zhuo, H., Yuen, C., & Chan, L. (2010b). Study on the thermal-induced shape
memory effect of pyridine containing supramolecular polyurethane. Polymer, 51(1), 240–248.
https://doi.org/10.1016/j.polymer.2009.11.034.
Chen, S., Hu, J., & Chen, S. (2012). Studies of the moisture-sensitive shape memory effect of
pyridine-containing polyurethanes. Polymer International, 61(2), 314–320. https://doi.
org/10.1002/pi.3192.
Chen, S., Yuan, H., Zhuo, H., Chen, S., Yang, H., Ge, Z., & Liu, J. (2014). Development of
liquid- crystalline shape-memory polyurethane composites based on polyurethane with semicrystalline reversible phase and hexadecyloxybenzoic acid for self-healing applications.
Journal of Materials Chemistry C, 2(21), 4203–4212. https://doi.org/10.1039/c4tc00137k.
Du, H., & Zhang, J. (2010). Solvent induced shape recovery of shape memory polymer based on
chemically cross-linked poly(vinyl alcohol). Soft Matter, 6(14), 3370. https://doi.org/10.1039/
b922220k.
Dušek, K., & Patterson, D. (1968). Transition in swollen polymer networks induced by intramolecular condensation. Journal of Polymer Science Part A-2: Polymer Physics, 6(7), 1209–1216.
https://doi.org/10.1002/pol.1968.160060701.
Flory, P. J. (1953). Principle of polymer chemistry. New York: Cornel.
Freiberg, S., & Zhu, X. X. (2004). Polymer microspheres for controlled drug release. International
Journal of Pharmaceutics, 282, 1–2), 1–18. https://doi.org/10.1016/j.ijpharm.2004.04.013.
Fu, C.-C., Grimes, A., Long, M., Ferri, C. G. L., Rich, B. D., Ghosh, S., Ghosh, S., Lee, L. P.,
Gopinathan, A., & Khine, M. (2009). Tunable nanowrinkles on shape memory polymer sheets.
Advanced Materials, 21(44), 4472–4476. https://doi.org/10.1002/adma.200902294.
Gallardo Fuentes, J. M., Gümpel, P., & Strittmatter, J. (2002). Phase change behavior of nitinol shape memory alloys. Advanced Engineering Materials, 4(7), 437–452. https://doi.
org/10.1002/1527-2648(20020717)4:7<437::aid-adem437>3.0.co;2-8.
Garle, A., Kong, S., Ojha, U., & Budhlall, B. M. (2012). Thermoresponsive semicrystalline poly(εcaprolactone) networks: Exploiting cross-linking with cinnamoyl moieties to design polymers
with tunable shape memory. ACS Applied Materials & Interfaces, 4(2), 645–657. https://doi.
org/10.1021/am2011542.
Gong, T., Li, W., Chen, H., Wang, L., Shao, S., & Zhou, S. (2012). Remotely actuated shape memory effect of electrospun composite nanofibers. Acta Biomaterialia, 8(3), 1248–1259. https://
doi.org/10.1016/j.actbio.2011.12.006.
Grapski, J. A., & Cooper, S. L. (2001). Synthesis and characterization of non-leaching biocidal polyurethanes. Biomaterials, 22(16), 2239–2246. https://doi.org/10.1016/S0142-9612(00)00412-9.
Gu, S.-Y., Liu, L.-L., & Gao, X.-F. (2015). Triple-shape memory properties of polyurethane/
polylactide-polytetramethylene ether blends: Triple-shape memory properties of polyurethane.
Polymer International, 64(9), 1155–1162. https://doi.org/10.1002/pi.4886.
Gutiérrez, T. J., González Seligra, P., Medina Jaramillo, C., Famá, L., & Goyanes, S. (2017).
Chapter 14. Effect of filler properties on the antioxidant response of thermoplastic starch composites. In: Handbook of Composites from Renewable Materials. Vijay Kumar Thakur, Manju
Kumari Thakur, and Michael R. Kessler (Eds). WILEY-Scrivener Publisher. EE.UU. ISBN:
978-1-119-22362-7. pp. 337-370. https://doi.org/10.1002/9781119441632.ch14.
Gutiérrez, T. J., & Alvarez, V. A. (2017a). Eco-friendly films prepared from plantain flour/
PCL blends under reactive extrusion conditions using zirconium octanoate as a catalyst.
Carbohydrate Polymers, 178, 260–269. https://doi.org/10.1016/j.carbpol.2017.09.026.
Gutiérrez, T. J., & Alvarez, V. A. (2017b). Data on physicochemical properties of active films
derived from plantain flour/PCL blends developed under reactive extrusion conditions. Data in
Brief, 15, 445–448. https://doi.org/10.1016/j.dib.2017.09.071.
Gutiérrez, T. J., & Alvarez, V. A. (2017c). Properties of native and oxidized corn starch/polystyrene
blends under conditions of reactive extrusion using zinc octanoate as a catalyst. Reactive and
Functional Polymers, 112, 33–44. https://doi.org/10.1016/j.reactfunctpolym.2017.01.002.
Gutiérrez, T. J., & Alvarez, V. A. (2017d). Cellulosic materials as natural fillers in starch-containing matrix-based films: a review. Polymer Bulletin, 74(6), 2401–2430. https://doi.org/10.1007/
s00289-016-1814-0.
3 Smart and Shape Memory Polymers
Chen, S., Hu, J., Zhuo, H., Yuen, C., & Chan, L. (2010b). Study on the thermal-induced shape
memory effect of pyridine containing supramolecular polyurethane. Polymer, 51(1), 240–248.
https://doi.org/10.1016/j.polymer.2009.11.034.
Chen, S., Hu, J., & Chen, S. (2012). Studies of the moisture-sensitive shape memory effect of
pyridine-containing polyurethanes. Polymer International, 61(2), 314–320. https://doi.
org/10.1002/pi.3192.
Chen, S., Yuan, H., Zhuo, H., Chen, S., Yang, H., Ge, Z., & Liu, J. (2014). Development of
liquid- crystalline shape-memory polyurethane composites based on polyurethane with semicrystalline reversible phase and hexadecyloxybenzoic acid for self-healing applications.
Journal of Materials Chemistry C, 2(21), 4203–4212. https://doi.org/10.1039/c4tc00137k.
Du, H., & Zhang, J. (2010). Solvent induced shape recovery of shape memory polymer based on
chemically cross-linked poly(vinyl alcohol). Soft Matter, 6(14), 3370. https://doi.org/10.1039/
b922220k.
Dušek, K., & Patterson, D. (1968). Transition in swollen polymer networks induced by intramolecular condensation. Journal of Polymer Science Part A-2: Polymer Physics, 6(7), 1209–1216.
https://doi.org/10.1002/pol.1968.160060701.
Flory, P. J. (1953). Principle of polymer chemistry. New York: Cornel.
Freiberg, S., & Zhu, X. X. (2004). Polymer microspheres for controlled drug release. International
Journal of Pharmaceutics, 282, 1–2), 1–18. https://doi.org/10.1016/j.ijpharm.2004.04.013.
Fu, C.-C., Grimes, A., Long, M., Ferri, C. G. L., Rich, B. D., Ghosh, S., Ghosh, S., Lee, L. P.,
Gopinathan, A., & Khine, M. (2009). Tunable nanowrinkles on shape memory polymer sheets.
Advanced Materials, 21(44), 4472–4476. https://doi.org/10.1002/adma.200902294.
Gallardo Fuentes, J. M., Gümpel, P., & Strittmatter, J. (2002). Phase change behavior of nitinol shape memory alloys. Advanced Engineering Materials, 4(7), 437–452. https://doi.
org/10.1002/1527-2648(20020717)4:7<437::aid-adem437>3.0.co;2-8.
Garle, A., Kong, S., Ojha, U., & Budhlall, B. M. (2012). Thermoresponsive semicrystalline poly(εcaprolactone) networks: Exploiting cross-linking with cinnamoyl moieties to design polymers
with tunable shape memory. ACS Applied Materials & Interfaces, 4(2), 645–657. https://doi.
org/10.1021/am2011542.
Gong, T., Li, W., Chen, H., Wang, L., Shao, S., & Zhou, S. (2012). Remotely actuated shape memory effect of electrospun composite nanofibers. Acta Biomaterialia, 8(3), 1248–1259. https://
doi.org/10.1016/j.actbio.2011.12.006.
Grapski, J. A., & Cooper, S. L. (2001). Synthesis and characterization of non-leaching biocidal polyurethanes. Biomaterials, 22(16), 2239–2246. https://doi.org/10.1016/S0142-9612(00)00412-9.
Gu, S.-Y., Liu, L.-L., & Gao, X.-F. (2015). Triple-shape memory properties of polyurethane/
polylactide-polytetramethylene ether blends: Triple-shape memory properties of polyurethane.
Polymer International, 64(9), 1155–1162. https://doi.org/10.1002/pi.4886.
Gutiérrez, T. J., González Seligra, P., Medina Jaramillo, C., Famá, L., & Goyanes, S. (2017).
Chapter 14. Effect of filler properties on the antioxidant response of thermoplastic starch composites. In: Handbook of Composites from Renewable Materials. Vijay Kumar Thakur, Manju
Kumari Thakur, and Michael R. Kessler (Eds). WILEY-Scrivener Publisher. EE.UU. ISBN:
978-1-119-22362-7. pp. 337-370. https://doi.org/10.1002/9781119441632.ch14.
Gutiérrez, T. J., & Alvarez, V. A. (2017a). Eco-friendly films prepared from plantain flour/
PCL blends under reactive extrusion conditions using zirconium octanoate as a catalyst.
Carbohydrate Polymers, 178, 260–269. https://doi.org/10.1016/j.carbpol.2017.09.026.
Gutiérrez, T. J., & Alvarez, V. A. (2017b). Data on physicochemical properties of active films
derived from plantain flour/PCL blends developed under reactive extrusion conditions. Data in
Brief, 15, 445–448. https://doi.org/10.1016/j.dib.2017.09.071.
Gutiérrez, T. J., & Alvarez, V. A. (2017c). Properties of native and oxidized corn starch/polystyrene
blends under conditions of reactive extrusion using zinc octanoate as a catalyst. Reactive and
Functional Polymers, 112, 33–44. https://doi.org/10.1016/j.reactfunctpolym.2017.01.002.
Gutiérrez, T. J., & Alvarez, V. A. (2017d). Cellulosic materials as natural fillers in starch-containing matrix-based films: a review. Polymer Bulletin, 74(6), 2401–2430. https://doi.org/10.1007/
s00289-016-1814-0.
3 Smart and Shape Memory Polymers
