50
Gutiérrez, T. J., Ollier, R., & Alvarez, V. A. (2018). Chapter 5. Surface properties of thermoplastic starch materials reinforced with natural fillers. In: Functional Biopolymers. Vijay Kumar
Thakur, and Manju Kumari Thakur (Eds). Publisher: Springer International Publishing.
EE.UU. Print ISBN: 978-3-319-66416-3. Online ISBN: 978-3-319-66417-0. pp. 131–158.
https://doi.org/10.1007/978-3-319-66417-0_5.
Gutiérrez, T. J., Toro-Márquez, L. A., Merino, D., & Mendieta, J. R. (2019). Hydrogen-bonding
interactions and compostability of bionanocomposite films prepared from corn starch and
nano-fillers with and without added Jamaica flower extract. Food Hydrocolloids, 89, 283–293.
https://doi.org/10.1016/j.foodhyd.2018.10.058.
Gutiérrez, T. J., Mendieta, J. R., & Ortega-Toro, R. (2021). In-depth study from gluten/PCL-based
food packaging films obtained under reactive extrusion conditions using chrome octanoate as
a potential food grade catalyst. Food Hydrocolloids, 111, 106255. https://doi.org/10.1016/j.
foodhyd.2020.106255.
Hirai, T., Maruyama, H., Suzuki, T., & Hayashi, S. (1992). Shape memorizing properties of a
hydrogel of poly(vinyl alcohol). Journal of Applied Polymer Science, 45(10), 1849–1855.
https://doi.org/10.1002/app.1992.070451019.
Herniou--Julien, C., Mendieta, J. R., & Gutiérrez, T. J. (2019). Characterization of biodegradable/non-compostable films made from cellulose acetate/corn starch blends processed under
reactive extrusion conditions. Food Hydrocolloids, 89, 67–79. https://doi.org/10.1016/j.
foodhyd.2018.10.024.
Hornbogen, E. (2006). Comparison of shape memory metals and polymers. Advanced Engineering
Materials, 8(1–2), 101–106. https://doi.org/10.1002/adem.200500193.
Hu, J., Yang, Z., Yeung, L., Ji, F., & Liu, Y. (2005a). Crosslinked polyurethanes with shape memory
properties. Polymer International, 54(5), 854–859. https://doi.org/10.1002/pi.1785.
Hu, J., Yang, Z., Yeung, L., Ji, F., & Liu, Y. (2005b). Crosslinked polyurethanes with shape memory properties. Polymer International, 54(5), 854–859. https://doi.org/10.1002/pi.1785.
Jiang, H., Fan, L., Yan, S., Li, F., Li, H., & Tang, J. (2019). Tough and electro-responsive hydrogel actuators with bidirectional bending behavior. Nanoscale, 11(5), 2231–2237. https://doi.
org/10.1039/c8nr07863g.
Jung, Y. C., Yoo, H. J., Kim, Y. A., Cho, J. W., & Endo, M. (2010). Electroactive shape memory performance of polyurethane composite having homogeneously dispersed and covalently crosslinked carbon nanotubes. Carbon, 48(5), 1598–1603. https://doi.org/10.1016/j.
carbon.2009.12.058.
Koerner, H., Price, G., Pearce, N. A., Alexander, M., & Vaia, R. A. (2004). Remotely actuated
polymer nanocomposites—stress-recovery of carbon-nanotube-filled thermoplastic elastomers. Nature Materials, 3(2), 115–120. https://doi.org/10.1038/nmat1059.
Lagoudas, D. C., Entchev, P. B., Popov, P., Patoor, E., Brinson, L. C., & Gao, X. (2006). Shape
memory alloys, Part II: Modeling of polycrystals. Mechanics of Materials, 38(5–6), 430–462.
https://doi.org/10.1016/j.mechmat.2005.08.003.
Le, X., Lu, W., Zheng, J., Tong, D., Zhao, N., Ma, C., Xiao, H., Zhang, J., Huang, Y., & Chen,
T. (2016). Stretchable supramolecular hydrogels with triple shape memory effect. Chemical
Science, 7(11), 6715–6720. https://doi.org/10.1039/c6sc02354a.
Le, X., Lu, W., Zhang, J., & Chen, T. (2019). Recent progress in biomimetic anisotropic hydrogel
actuators. Advanced Science, 6(5), 1801584. https://doi.org/10.1002/advs.201801584.
Lendlein, A. (2002). Biodegradable, elastic shape-memory polymers for potential biomedical
applications. Science, 296(5573), 1673–1676. https://doi.org/10.1126/science.1066102.
Lendlein, A., Jiang, H., Jünger, O., & Langer, R. (2005). Light-induced shape-memory polymers.
Nature, 434(7035), 879–882. https://doi.org/10.1038/nature03496.
Lendlein, A., Behl, M., Hiebl, B., & Wischke, C. (2010). Shape-memory polymers as a technology platform for biomedical applications. Expert Review of Medical Devices, 7(3), 357–379.
https://doi.org/10.1586/erd.10.8.
Li, G., Yan, Q., Xia, H., & Zhao, Y. (2015). Therapeutic-ultrasound-triggered shape memory
of a melamine-enhanced poly(vinyl alcohol) physical hydrogel. ACS Applied Materials &
Interfaces, 7(22), 12067–12073. https://doi.org/10.1021/acsami.5b02234.
Z. Gao and G. Gao
Gutiérrez, T. J., Ollier, R., & Alvarez, V. A. (2018). Chapter 5. Surface properties of thermoplastic starch materials reinforced with natural fillers. In: Functional Biopolymers. Vijay Kumar
Thakur, and Manju Kumari Thakur (Eds). Publisher: Springer International Publishing.
EE.UU. Print ISBN: 978-3-319-66416-3. Online ISBN: 978-3-319-66417-0. pp. 131–158.
https://doi.org/10.1007/978-3-319-66417-0_5.
Gutiérrez, T. J., Toro-Márquez, L. A., Merino, D., & Mendieta, J. R. (2019). Hydrogen-bonding
interactions and compostability of bionanocomposite films prepared from corn starch and
nano-fillers with and without added Jamaica flower extract. Food Hydrocolloids, 89, 283–293.
https://doi.org/10.1016/j.foodhyd.2018.10.058.
Gutiérrez, T. J., Mendieta, J. R., & Ortega-Toro, R. (2021). In-depth study from gluten/PCL-based
food packaging films obtained under reactive extrusion conditions using chrome octanoate as
a potential food grade catalyst. Food Hydrocolloids, 111, 106255. https://doi.org/10.1016/j.
foodhyd.2020.106255.
Hirai, T., Maruyama, H., Suzuki, T., & Hayashi, S. (1992). Shape memorizing properties of a
hydrogel of poly(vinyl alcohol). Journal of Applied Polymer Science, 45(10), 1849–1855.
https://doi.org/10.1002/app.1992.070451019.
Herniou--Julien, C., Mendieta, J. R., & Gutiérrez, T. J. (2019). Characterization of biodegradable/non-compostable films made from cellulose acetate/corn starch blends processed under
reactive extrusion conditions. Food Hydrocolloids, 89, 67–79. https://doi.org/10.1016/j.
foodhyd.2018.10.024.
Hornbogen, E. (2006). Comparison of shape memory metals and polymers. Advanced Engineering
Materials, 8(1–2), 101–106. https://doi.org/10.1002/adem.200500193.
Hu, J., Yang, Z., Yeung, L., Ji, F., & Liu, Y. (2005a). Crosslinked polyurethanes with shape memory
properties. Polymer International, 54(5), 854–859. https://doi.org/10.1002/pi.1785.
Hu, J., Yang, Z., Yeung, L., Ji, F., & Liu, Y. (2005b). Crosslinked polyurethanes with shape memory properties. Polymer International, 54(5), 854–859. https://doi.org/10.1002/pi.1785.
Jiang, H., Fan, L., Yan, S., Li, F., Li, H., & Tang, J. (2019). Tough and electro-responsive hydrogel actuators with bidirectional bending behavior. Nanoscale, 11(5), 2231–2237. https://doi.
org/10.1039/c8nr07863g.
Jung, Y. C., Yoo, H. J., Kim, Y. A., Cho, J. W., & Endo, M. (2010). Electroactive shape memory performance of polyurethane composite having homogeneously dispersed and covalently crosslinked carbon nanotubes. Carbon, 48(5), 1598–1603. https://doi.org/10.1016/j.
carbon.2009.12.058.
Koerner, H., Price, G., Pearce, N. A., Alexander, M., & Vaia, R. A. (2004). Remotely actuated
polymer nanocomposites—stress-recovery of carbon-nanotube-filled thermoplastic elastomers. Nature Materials, 3(2), 115–120. https://doi.org/10.1038/nmat1059.
Lagoudas, D. C., Entchev, P. B., Popov, P., Patoor, E., Brinson, L. C., & Gao, X. (2006). Shape
memory alloys, Part II: Modeling of polycrystals. Mechanics of Materials, 38(5–6), 430–462.
https://doi.org/10.1016/j.mechmat.2005.08.003.
Le, X., Lu, W., Zheng, J., Tong, D., Zhao, N., Ma, C., Xiao, H., Zhang, J., Huang, Y., & Chen,
T. (2016). Stretchable supramolecular hydrogels with triple shape memory effect. Chemical
Science, 7(11), 6715–6720. https://doi.org/10.1039/c6sc02354a.
Le, X., Lu, W., Zhang, J., & Chen, T. (2019). Recent progress in biomimetic anisotropic hydrogel
actuators. Advanced Science, 6(5), 1801584. https://doi.org/10.1002/advs.201801584.
Lendlein, A. (2002). Biodegradable, elastic shape-memory polymers for potential biomedical
applications. Science, 296(5573), 1673–1676. https://doi.org/10.1126/science.1066102.
Lendlein, A., Jiang, H., Jünger, O., & Langer, R. (2005). Light-induced shape-memory polymers.
Nature, 434(7035), 879–882. https://doi.org/10.1038/nature03496.
Lendlein, A., Behl, M., Hiebl, B., & Wischke, C. (2010). Shape-memory polymers as a technology platform for biomedical applications. Expert Review of Medical Devices, 7(3), 357–379.
https://doi.org/10.1586/erd.10.8.
Li, G., Yan, Q., Xia, H., & Zhao, Y. (2015). Therapeutic-ultrasound-triggered shape memory
of a melamine-enhanced poly(vinyl alcohol) physical hydrogel. ACS Applied Materials &
Interfaces, 7(22), 12067–12073. https://doi.org/10.1021/acsami.5b02234.
Z. Gao and G. Gao
