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Manzano, V.E.; Kolender, A.A.; Varela, O. "Synthesis and applications of carbohydrate-based polyurethanes" (2017) Industrial Applications of Renewable Biomass Products: Past, Present and Future:1-43
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Documento: Parte de libro
Título:Synthesis and applications of carbohydrate-based polyurethanes
Autor:Manzano, V.E.; Kolender, A.A.; Varela, O.
Filiación:Universidad de Buenos Aires, Facultad de Ciencias Exactas y Naturales, Departamento de Química Orgánica, Pabellón 2, Ciudad Universitaria, Buenos Aires, C1428EHA, Argentina
Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET)-UBA, Centro de Investigación en Hidratos de Carbono (CIHIDECAR), Buenos Aires, Argentina
Año:2017
Página de inicio:1
Página de fin:43
DOI: http://dx.doi.org/10.1007/978-3-319-61288-1_1
Título revista:Industrial Applications of Renewable Biomass Products: Past, Present and Future
Título revista abreviado:Ind. Appl. of Renew. Biomass Prod.: Past, Present and Future
Registro:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_97833196_v_n_p1_Manzano

Referencias:

  • Abenhaïm, D., Loupy, A., Munnier, L., Tamion, R., Marsais, F., Quéguiner, G., Selective alkylations of 1,4:3,6-dianhydro-D-glucitol (isosorbide) (1994) Carbohydr Res, 261, pp. 255-266
  • Abraham, G.A., Marcos-Fernández, A., Román, J.S., Bioresorbable poly(ester-ether urethane)s from L-lysine diisocyanate and triblock copolymers with different hydrophilic character (2006) J Biomed Mater Res, 76A, pp. 729-736
  • Alves, P., Ferreira, P., Gil, M.H., Biomedical polyurethanes-based materials (2012) structure and applications, Polymer science and technology, pp. 25-50. , Cavaco LI, Almeida Melo J (eds) Polyurethane: properties. Nova Science Publishers, New York
  • Arce, S.M., Kolender, A.A., Varela, O., Synthesis of ω-amino-α-phenylcarbonate alkanes and their polymerization to [n]-polyurethanes (2010) Polym Int, 59, pp. 1212-1220
  • Bachmann, F., Reimer, J., Ruppenstein, M., Thiem, J., Synthesis of a novel starch-derived AB-type polyurethane (1998) Macromol Rapid Commun, 19, pp. 21-26
  • Bachmann, F., Reimer, J., Ruppenstein, M., Thiem, J., Synthesis of novel polyurethanes and polyureas by polyaddition reactions of dianhydrohexitol configurated diisocyanates (2001) Macromol Chem Phys, 202, pp. 3410-3419
  • Barikani, M., Mohammadi, M., Synthesis and characterization of starch-modified polyurethane (2007) Carbohydr Polym, 68, pp. 773-780
  • Barikani, M., Honarkar, H., Barikani, M., Synthesis and characterization of polyurethane elastomers based on chitosan and poly(ε-caprolactone) (2009) J Appl Polym Sci, 112, pp. 3157-3165
  • Barikani, M., Honarkar, H., Barikani, M., Synthesis and characterization of chitosan-based polyurethane elastomer dispersions (2010) Monatsh Chem, 141, pp. 653-659
  • Bayer, C.L., Pérez Herrero, E., Peppas, N.A., Alginate films as macromolecular imprinted matrices (2011) J Biomater Sci Polym Ed, 22, pp. 1523-1534
  • Begines, B., Zamora, F., Roffé, I., Mancera, M., Galbis, J.A., Sugar-based hydrophilic polyurethanes and polyureas (2011) J Polym Sci Part A: Polym Chem, 49, pp. 1953-1961
  • Begines, B., Zamora, F., Benito, E., García-Martín, M.D.G., Galbis, J.A., Conformationally restricted linear polyurethanes from acetalized sugar-based monomers (2012) J Polym Sci Part A:Polym Chem, 50, pp. 4638-4646
  • Beldi, M., Medimagh, R., Chatti, S., Marque, S., Prim, D., Loupy, A., Delolme, F., Characterization of cyclic and non-cyclic poly-(ether-urethane)s bio-based sugar diols by a combination of MALDI-TOF and NMR (2007) Eur Polym J, 43, pp. 3415-3433
  • Besse, V., Auvergne, R., Carlotti, S., Boutevin, G., Otazaghine, B., Caillol, S., Pascault, J.P., Boutevin, B., Synthesis of isosorbide based polyurethanes: an isocyanate free method (2013) React Funct Polym, 73, pp. 588-594
  • Campiñez, M.D., Aguilar-de-Leyva, A., Ferris, C., de Paz, M.V., Galbis, J.A., Caraballo, I., Study of the properties of the new biodegradable polyurethane PU (TEG-HMDI) as matrix forming excipient for controlled drug delivery (2013) Drug Dev Ind Pharm, 39, pp. 1758-1764
  • Cascone, M.G., Dynamic-mechanical properties of bioartificial polymeric materials (1997) Polym Int, 43, pp. 55-69
  • Cascone, M.G., Barbani, N., Cristallini, C., Giusti, P., Ciardelli, G., Lazzeri, L., Bioartificial polymeric materials based on polysaccharides (2001) J Biomater Sci Polym Ed, 12, pp. 267-281
  • Cherng, J.Y., Hou, T.Y., Shih, M.F., Talsma, H., Hennink, W.E., Polyurethane-based drug delivery systems (2013) Int J Pharm, 450, pp. 145-162
  • Cognet-Georjon, E., Mechin, F., Pascault, J.P., New polyurethanes based on diphenylmethane diisocyanate and 1,4:3,6-dianhydrosorbitol, 1 Model kinetic studies and characterization of the hard segment (1995) Makromol Chem, 196, pp. 3733-3751
  • Daemi, H., Barikani, M., Barmar, M., Highly stretchable nanoalginate based polyurethane elastomers (2013) Carbohydr Polym, 95, pp. 630-636
  • Datta, J., WŁoch, M., Progress in non-isocyanate polyurethanes synthesized from cyclic carbonate intermediates and di- or polyamines in the context of structure-properties relationship and from an environmental point of view (2016) Polym Bull, 73, pp. 1459-1496
  • Delebecq, E., Pascault, J.-P., Boutevin, B., Ganachaud, F., On the versatility of urethane/urea bonds: reversibility, blocked isocyanate, and non-isocyanate polyurethane (2013) Chem Rev, 113, pp. 80-118
  • Dieterich, D., Aqueous emulsions, dispersions and solutions of polyurethanes: synthesis and properties (1981) Prog Org Coat, 9, pp. 281-340
  • Dirlikov, S.K., Schneider, C.J., Polyurethanes based on 1;4-3:6 dianhydrohexitols (1984), Us; Donnelly, M.J., Still, R.H., Stanford, J.L., The conversion of polysaccharides into polyurethanes:a review (1991) Carbohydr Polym, 14, pp. 221-240
  • Donnelly, M.J., Stanford, J.L., Still, R.H., Polyurethanes from renewable resources -I: properties of polymers derived from glucose and xylose based polyols (1993) Polym Int, 32, pp. 197-203
  • Draget, K.I., Alginates (2009) Woodhead Publishing Limited, pp. 807-828. , Phillips GO, Williams PA (eds) Handbook of hydrocolloids , Elsevier, Cambridge
  • Drotleff, S., Lungwitz, U., Breunig, M., Dennis, A., Blunk, T., Tessmar, J., Göpferich, A., Biomimetic polymers in pharmaceutical and biomedical sciences (2004) Eur J Pharm Biopharm, 58, pp. 385-407
  • Efe-Sanden, G., Toomey, R., Poly(N-isopropylacrylamide) networks conjugated with Gly-Gly-his via a Merrifield solid-phase peptide synthesis technique for metal-ion recognition (2014) Macromol Chem Phys, 215, pp. 1342-1349
  • Fenouillot, F., Rousseau, A., Colomines, G., Saint-Loup, R., Pascault, J.-P., Polymers from renewable 1,4:3,6-dianhydrohexitols (isosorbide, isomannide and isoidide): a review (2010) Prog Polym Sci, 35, pp. 578-622
  • Fernández, C.E., Bermúdez, M., Versteegen, R.M., Meijer, E.W., Vancso, G.J., Muñoz-Guerra, S., An overview on 12-polyurethane: synthesis, structure and crystallization (2010) Eur Polym J, 46, pp. 2089-2098
  • Ferris, C., De Paz, M.V., Zamora, F., Galbis, J.A., Dithiothreitol-based polyurethanes Synthesis and degradation studies (2010) Polym Degrad Stab, 95, pp. 1480-1487
  • Ferris, C., De Paz, M.V., Galbis, J.A., L-arabinitol-based functional polyurethanes (2011) J Polym Sci Part A: Polym Chem, 49, pp. 1147-1154
  • Ferris, C., de Paz, M.V., Galbis, J.A., Synthesis of functional sugar-based polyurethanes (2012) Macromol Chem Phys, 213, pp. 480-488
  • Ferris, C., de Paz, M.V., Aguilar-de-Leyva, A., Caraballo, I., Galbis, J.A., Reduction-sensitive functionalized copolyurethanes for biomedical applications (2014) Polym Chem, 5, pp. 2370-2381
  • Fidalgo, D.M., Kolender, A.A., Varela, O., Stereoregular poly-O-methyl [m, n]-polyurethanes derived from D-mannitol (2013) J Polym Sci Part A: Polym Chem, 51, pp. 463-470
  • Flavin, K., Resmini, M., Imprinted nanomaterials: a new class of synthetic receptors (2009) Anal Bioanal Chem, 393, pp. 437-444
  • Fu, G.-Q., Yu, H., Zhu, J., Rebinding and recognition properties of protein-macromolecularly imprinted calcium phosphate/alginate hybrid polymer microspheres (2008) Biomaterials, 29, pp. 2138-2142
  • Furukawa, M., Mitsui, Y., Fukumaru, T., Kojio, K., Microphase-separated structure and mechanical properties of novel polyurethane elastomers prepared with ether based diisocyanate (2005) Polymer, 46, pp. 10817-10822
  • Galbis, J.A., García-Martín, M.G., de Paz, M.V., Galbis, E., Synthetic polymers from sugar-based monomers (2016) Chem Rev, 116, pp. 1600-1636
  • Gallagher, J.J., Hillmyer, M.A., Reineke, T.M., Degradable thermosets from sugar-derived dilactones (2014) Macromolecules, 47, pp. 498-505
  • Gallego, R., Arteaga, J.F., Valencia, C., Franco, J.M., Thickening properties of several NCO-functionalized cellulose derivatives in castor oil (2015) Chem Eng Sci, 134, pp. 260-268
  • Gandini, A., Lacerda, T.M., Carvalho, A.J.F., Trovatti, E., Progress of polymers from renewable resources: furans, vegetable oils, and polysaccharides (2016) Chem Rev, 116, pp. 1637-1669
  • Garçon, R., Clerk, C., Gesson, J.P., Bordado, J., Nunes, T., Caroço, S., Gomes, P.T., Rauter, A.P., Synthesis of novel polyurethanes from sugars and 1,6-hexamethylene diisocyanate (2001) Carbohydr Polym, 45, pp. 123-127
  • Ge, Y., Turner, A.P.F., Too large to fit? Recent developments in macromolecular imprinting (2008) Trends Biotechnol, 26, pp. 218-224
  • Giusti, P., Lazzeri, L., Petris, S., Palla, M., Cascone, M.G., Collagen-based new bioartificial polymeric materials (1994) Biomaterials, 15, pp. 1229-1233
  • Gomez, R.V., Varela, O., Synthesis of polyhydroxy [n]-polyurethanes derived from a carbohydrate precursor (2009) Macromolecules, 42, pp. 8112-8117
  • Hashimoto, K., Okada, M., Honjoh, N., Ring-opening polyaddition of D-glucaro-1,4:6,3-dilactone with p-xylylenediamine (1990) Makromol Chem Rapid Commun, 11, pp. 393-396
  • Hashimoto, K., Mori, K., Okada, M., Anionic ring-opening polymerization of a novel optically active bicyclic lactam synthesized from an acidic saccharide (1992) Macromolecules, 25, pp. 2592-2598
  • Hashimoto, K., Wibullucksanakul, S., Matsuera, M., Okada, M., Macromolecular synthesis from saccharic lactones Ring-opening polyaddition of D-glucaro- and D-mannaro-1,4:6,3-dilactones with alkylenediamines (1993) Polym Sci Part A: Polym Chem, 31, pp. 3141-3149
  • Hashimoto, K., Wibullucksanakul, S., Okada, M., Polyaddition of saccharic dilactones with hexamethylene diisocyanate (1993) Chem Rapid Commun, 14, pp. 591-595
  • Hashimoto, K., Hashimoto, N., Kamaya, T., Yoshioka, J., Okawa, H., Synthesis and properties of bio-based polyurethanes bearing hydroxy groups derived from alditols (2011) J Polym Sci Part A:Polym Chem, 49, pp. 976-985
  • Haug, A., Larsen, B., Smidsrod, O., A study of the constitution of alginic acid by partial acid hydrolysis (1966) Acta Chem Scand, 20, pp. 183-190
  • van Haveren, J., Scott, E.L., Sanders, J., Bulk chemicals from biomass (2008) Biofuels Bioprod Biorefin, 2, pp. 41-57
  • Hu, S., Luo, X., Li, Y., Polyols and polyurethanes from the liquefaction of lignocellulosic biomass (2014) ChemSusChem, 7, pp. 66-72
  • Huang, W.M., Yang, B., An, L., Li, C., Chan, Y.S., Water-driven programmable polyurethane shape memory polymer: demonstration and mechanism (2005) Appl Phys Lett, 86, p. 114105
  • Kihara, N., Endo, T., Synthesis and properties of poly(hydroxyurethane)s (1993) J Polym Sci Part A:Polym Chem, 31, pp. 2765-2773
  • Kihara, N., Cusida, Y., Endo, T., Optically active poly(hydroxyurethane)s derived from cyclic carbonate and L-lysine derivatives (1996) J Polym Sci Part A: Polym Chem, 34, pp. 2173-2179
  • Kim, H.-J., Kang, M.-S., Knowles, J.C., Gong, M.-S., Synthesis of highly elastic biocompatible polyurethanes based on bio-based isosorbide and poly(tetramethylene glycol) and their properties (2014) J Biomater Appl, 29, pp. 454-464
  • Kloosterboer, J.G., Network formation by chain crosslinking photopolymerization and its applications in electronics (1988) Adv Polym Sci, 84, pp. 1-61
  • Kolender, A.A., Arce, S.M., Varela, O., Synthesis and characterization of poly-O-methyl-[n]-polyurethane from a D-glucamine-based monomer (2011) Carbohydr Res, 346, pp. 1398-1405
  • Kricheldorf, H.R., Sugar diols as building blocks of polycondensates (1997) J Macromol Sci Rev Macromol Chem Phys, 37, pp. 599-631
  • Król, P., Polyurethanes - a review of 60 years of their syntheses and applications (2009) Polimery, 54, pp. 489-500
  • Langer, R., Cima, L.G., Tamada, J.A., Wintermantel, E., Future directions in biomaterials (1990) Biomaterials, 11, pp. 738-745
  • Lee, C.H., Takagi, H., Okamoto, H., Kato, M., Usuki, A., Synthesis, characterization, and properties of polyurethanes containing 1,4:3,6-dianhydro-D-sorbitol (2009) J Polym Sci A Polym Chem, 47, pp. 6025-6031
  • Lendlein, A., Langer, R., Biodegradable, elastic shape-memory polymers for potential biomedical applications (2002) Science, 296, pp. 1673-1676
  • Lendlein, A., Jiang, H., Junger, O., Langer, R., Light-induced shape-memory polymers (2005) Nature, 434, pp. 879-882
  • Leonard, M., de Boisseon, M.R., Hubert, P., Dellacherie, E., Production of microspheres based on hydrophobically associating alginate derivatives by dispersion/gelation in aqueous sodium chloride solutions (2004) J Biomed Mater Res, 68A, pp. 335-342
  • Li, Y., Noordover, B.A.J., van Benthem, R.A.T.M., Koning, C.E., Reactivity and regio-selectivity of renewable building blocks for the synthesis of water-dispersible polyurethane prepolymers (2014) ACS Sustain Chem Eng, 2, pp. 788-797
  • Li, Y., Noordover, B.A.J., van Benthem, R.A.T.M., Koning, C.E., Property profile of poly(urethane urea) dispersions containing dimer fatty acid-, sugar- and amino acid-based building blocks (2014) Eur Polym J, 59, pp. 8-18
  • Li, L., Ying, X., Liu, J., Li, X., Zhang, W., Molecularly imprinted polyurethane grafted calcium alginate hydrogel with specific recognition for proteins (2015) Mater Lett, 143, pp. 248-251
  • Lim, D.-I., Park, H.-S., Park, J.-H., Knowles, J.C., Gong, M.-S., Application of high-strength biodegradable polyurethanes containing different ratios of biobased isomannide and poly (caprolactone) diol (2013) J Bioact Compat Polym, 28, pp. 274-288
  • Liu, C., Qin, H., Mather, P.T., Review of progress in shape-memory polymers (2007) J Mater Chem, 17, pp. 1543-1558
  • Liu, X., Xu, K., Liu, H., Cai, H., Su, J., Fu, Z., Guo, Y., Chen, M., Preparation and properties of waterborne polyurethanes with natural dimer fatty acids based polyester polyol as soft segment (2011) Prog Org Coat, 72, pp. 612-620
  • Marín, R., Muñoz-Guerra, S., Linear polyurethanes made from threitol: acetalized and hydroxylated polymers (2008) J Polym Sci Part A: Polym Chem, 46, pp. 7996-8012
  • Marín, R., de Paz, M.V., Ittobane, N., Galbis, J.A., Muñoz-Guerra, S., Hydroxylated linear polyurethanes derived from sugar alditols (2009) Macromol Chem Phys, 210, pp. 486-494
  • Marín, R., Alla, A., de Ilarduya, A.M., Muñoz-Guerra, S., Carbohydrate-based polyurethanes:a comparative study of polymers made from isosorbide and 1,4-butanediol (2012) J Appl Polym Sci, 123, pp. 986-994
  • Matsui, M., Ono, L., Akcelrud, L., Chitin/polyurethane networks and blends: evaluation of biological application (2012) Polym Test, 31, pp. 191-196
  • Mendez, J., Annamalai, P.K., Eichhorn, S.J., Rusli, R., Rowan, S.J., Foster, E.J., Weder, C., Bioinspired mechanically adaptive polymer nanocomposites with water-activated shape-memory effect (2011) Macromolecules, 44, pp. 6827-6835
  • Metcalfe, A., Desfaits, A.C., Salazkin, I., Yahia, L., Sokolowski, W.M., Raymond, J., Cold hibernated elastic memory foams for endovascular interventions (2003) Biomaterials, 24, pp. 491-497
  • Metzger, M.F., Wilson, T.S., Schumann, D., Matthews, D.L., Maitland, D.J., Mechanical properties of mechanical actuator for treating ischemic stroke (2002) Biomed Microdevices, 4, pp. 89-96
  • Mohr, R., Kratz, K., Weigel, T., Lucka-Gabor, M., Moneke, M., Lendlein, A., Initiation of shape-memory effect by inductive heating of magnetic nanoparticles in thermoplastic polymers (2006) Proc Natl Acad Sci U S A, 103, pp. 3540-3545
  • Mørch, Y.A., Holtan, S., Donati, I., Strand, B.L., Skjäk-Braek, G., Effect of Ca2+, Ba2+, and Sr2+ on alginate microbeads (2007) Biomacromolecules, 7, pp. 1471-1480
  • de Mulder, E.L.W., Hannink, G., Koens, M.J.W., Löwik, D.W.P.M., Verdonschot, N., Buma, P., Characterization of polyurethane scaffold surface functionalization with diamines and heparin (2013) J Biomed Mater Res Part A, 101A, pp. 919-922
  • Nohra, B., Candy, L., Blanco, J.F., Guerin, C., Raoul, Y., Moulounguim, Z., From petrochemical polyurethanes to biobased polyhydroxyurethanes (2013) Macromolecules, 46, pp. 3771-3792
  • Noreen, A., Mahmood Zia, K., Zuber, M., Tabasum, S., Fawad Zahoor, A., Bio-based polyurethane:an efficient and environment friendly coating systems (2016) Prog Org Coat, 91, pp. 25-32
  • Oh, S.-Y., Kang, M.-S., Knowles, J.C., Gong, M.-S., Synthesis of bio-based thermoplastic polyurethane elastomers containing isosorbide and polycarbonate diol and their biocompatible properties (2015) J Biomater Appl, 30, pp. 327-337
  • Parisi, M., Manzano, V.E., Flor, S., Lissarrague, M.H., Ribba, L., Lucangioli, S., D'Accorso, N.B., Goyanes, S., Polymeric prosthetic systems for sitespecific drug administration: physical and chemical properties (2015), 1, pp. 369-412. , Kumar Thakur V, Kumari Thakur M (eds) Handbook of polymers for pharmaceutical technologies, structure and chemistry, Structure and chemistry, Scrivener Publishing/Wiley, Hoboken; Park, H.-S., Gong, M.-S., Knowles, J.C., Catalyst-free synthesis of high elongation degradable polyurethanes containing varying ratios of isosorbide and polycaprolactone: physical properties and biocompatibility (2013) J Mater Sci Mater Med, 24, pp. 281-294
  • de Paz, M.V., Marín, R., Zamora, F., Hakkou, K., Alla, A., Galbis, J.A., Muñoz-Guerra, S., Linear polyurethanes derived from alditols and diisocyanates (2007) J Polym Sci Part A: Polym Chem, 45, pp. 4109-4117
  • de Paz, M.V., Zamora, F., Begines, B., Ferris, C., Galbis, J.A., Glutathione-mediated biodegradable polyurethanes derived from L-arabinitol (2010) Biomacromolecules, 11, pp. 269-276
  • Prömpers, G., Keul, H., Höcker, H., Polyurethanes with pendant hydroxy groups: polycondensation of D-mannitol-1,2:5,6-dicarbonate with diamines (2005) Des Monomers Polym, 8, pp. 547-569
  • Prömpers, G., Keul, H., Höcker, H., Polyurethanes with pendant hydroxy groups: polycondensation of 1,6-bis-O-phenoxycarbonyl-2,3:4,5-di-O-isopropylidenegalactitol and 1,6-di-O-phenoxycarbonylgalactitol with diamines (2006) Green Chem, 8, pp. 467-478
  • Rees, D.A., Samuel, J.W.B., The structure of alginic acid. Part VI Minor features and structural variations (1967) J Chem Soc C, pp. 2295-2298
  • Rokicki, G., Piotrowska, A., A new route to polyurethanes from ethylene carbonate (2002) Polymer, 43, pp. 2927-2935
  • Rokicki, G., Parzuchowski, Mazurek, M., Non-isocyanate polyurethanes: synthesis, properties, and applications (2015) Polym Adv Technol, 26, pp. 707-761
  • Sanda, F., Takata, T., Endo, T., Synthesis of a novel optically active nylon-1 polymer: anionic polymerization of L-leucine methylester isocyanate (1995) J Polym Sci A Polym Chem, 33, pp. 2353-2358
  • Saralegi, A., Fernandes, S.C.M., Alonso-Varona, A., Palomares, T., Foster, E.J., Weder, C., Eceiza, A., Corcuera, M.A., Shape-memory bionanocomposites based on chitin nanocrystals and thermoplastic polyurethane with a highly crystalline soft segment (2013) Biomacromolecules, 14, pp. 4475-4482
  • Sardon, H., Irusta, L., Fernández-Berridi, M.J., Synthesis of isophorone diisocyanate (IPDI) based waterborne polyurethanes: comparison between zirconium and tin catalysts in the polymerization process (2009) Prog Org Coat, 66, pp. 291-295
  • Savelyev, Y., Markovskaya, L., Olga Savelyeva, O., Akhranovich, E., Parkhomenko, N., Travinskaya, T., Degradable polyurethane foams based on disaccharides (2015) J Appl Polym Sci, 132, p. 42131
  • Sideridou, I.D., Achilias, D.S., Karava, O., Reactivity of benzoyl peroxide/amine system as an initiator for the free radical polymerization of dental and orthopaedic dimethacrylate monomers:effect of the amine and monomer chemical structure (2006) Macromolecules, 39, pp. 2072-2080
  • Sionkowska, A., Natural polymers as components of blends for biomedical applications (2013) CRC Press, Boca Raton, 1, pp. 309-342. , Dumitriu S, Popa V (eds) Polymeric biomaterials, Structure and Function
  • Small, W., Wilson, T.S., Benett, W.J., Loge, J., Maitland, D., Laser-activated shape memory polymer intravascular thrombectomy device (2005) Opt Express, 13, pp. 8204-8213
  • Solanki, A., Mehta, J., Thakore, S., Structure-property relationships and biocompatibility of carbohydrate crosslinked polyurethanes (2014) Carbohydr Polym, 110, pp. 338-344
  • Solanki, A.R., Kamath, B.V., Thakore, S., Carbohydrate crosslinked biocompatible polyurethanes:synthesis, characterization, and drug delivery studies (2015) J Appl Polym Sci, 132, p. 42223
  • Strand, B.L., Mørch, Y.A., Syvertsen, K.R., Espevik, T., Skjåk-Braek, G., Visualization of alginate-poly-L-lysine-alginate microcapsules by confocal laser scanning microscopy (2003) Biotechnol Bioeng, 82, pp. 386-394
  • Sun, X., Gao, H., Wu, G., Wang, Y., Fan, Y., Ma, J., Biodegradable and temperature-responsive polyurethanes for adriamycin delivery (2011) Int J Pharm, 412, pp. 52-58
  • Sun, C., Niu, Y., Tong, F., Mao, C., Huang, X., Zhao, B., Shen, J., Preparation of novel electrochemical glucose biosensors for whole blood based on antibiofouling polyurethane-heparin nanoparticles (2013) Electrochim Acta, 97, pp. 349-356
  • Szycher, M., Waterborne polyurethanes (2013) CRC Press, Boca Raton, pp. 417-448. , Szycher M (ed) Szycher's handbook of polyurethanes, 2nd edn
  • Thiem, J., Lüders, H., Synthesis and properties of polyurethanes derived from diaminodianhydroalditols (1986) Makromol Chem, 187, pp. 2775-2785
  • Tomita, H., Sand, F., Endo, T., Structural analysis of polyhydroxyurethane obtained by polyaddition of bifunctional five-membered cyclic carbonate and diamine based on the model reaction (2001) J Polym Sci Part A: Polym Chem, 39, pp. 851-859
  • Travinskaya, T., Savelyev, Y., Mishchuk, E., Waterborne polyurethane based starch containing materials: preparation, properties and study of degradability (2014) Polym Degrad Stab J, 101, pp. 102-108
  • Varma, A.J., Kennedy, J.F., Galgali, P., Synthetic polymers functionalized by carbohydrates: a review (2004) Carbohydr Polym, 56, pp. 429-445
  • Velankar, S., Cooper, S.L., Microphase separation and rheological properties of polyurethane melts 1. Effect of block length (1998) Macromolecules, 31, pp. 9181-9192
  • Velankar, S., Cooper, S.L., Microphase separation and rheological properties of polyurethane melts 2. Effect of block incompatibility on the microstructure (2000) Macromolecules, 33, pp. 382-394
  • Velankar, S., Cooper, S.L., Microphase separation and rheological properties of polyurethane melts 3. Effect of block incompatibility on the viscoelastic properties (2000) Macromolecules, 33, pp. 395-403
  • Venkatesan, J., Bhatnagar, I., Manivasagan, P., Kang, K., Kim, S., Alginate composites for bone tissue engineering: a review (2015) Int J Biol Macromol, 72, pp. 269-281
  • Verheyen, E., Schillemans, J.P., van Wijk, M., Demeniex, M.-A., Hennink, W.E., van Nostrum, C.F., Challenges for the effective molecular imprinting of proteins (2011) Biomaterials, 32, pp. 3008-3020
  • Versteegen, R.M., Sijbesma, R.P., Meijer, E.W., [n]-polyurethanes: synthesis and characterization (1999) Angew Chem Int Ed, 38, pp. 2917-2919
  • Vlakh, E.G., Tennikova, T.B., Applications of polymethacrylate-based monoliths in high-performance liquid chromatography (2009) J Chromatogr A, 1216, pp. 2637-2650
  • Wang, Y., Zhang, Z., Jain, V., Yi, J., Mueller, S., Sokolov, J., Liu, Z., Rafailovich, M.H., Potentiometric sensors based on surface molecular imprinting: detection of cancer biomarkers and viruses (2010) Sensors Actuators B Chem, 146, pp. 381-387
  • Wang, J., Ying, X., Li, X., Zhang, W., Preparation, characterization and swelling behaviors of polyurethane-grafted calcium alginate hydrogels (2014) Mater Lett, 126, pp. 263-266
  • Whelan, J.M., Jr., Hill, M., Cotter, R.J., Multiple cyclic carbonate polymers (1963), US; Wibullucksanakul, S., Hashimoto, K., Okada, M., Synthesis of polyurethanes from saccharide-derived diols and diisocyanates and their hydrolyzability (1996) Macromol Chem Phys, 197, pp. 135-146
  • Wibullucksanakul, S., Hashimoto, K., Okada, M., Swelling behavior and controlled release of new hydrolyzable poly(ether urethane) gels derived from saccharide and L-lysine derivatives and poly(ethylene glycol) (1996) Macromol Chem Phys, 197, pp. 1865-1876
  • Wibullucksanakul, S., Hashimoto, K., Okada, M., Hydrolysis and release behavior of hydrolyzable poly(etherurethane) gels derived from saccharide-, L-lysine-derivatives, and poly(propylene glycol) (1997) Macromol Chem Phys, 198, pp. 305-319
  • Witt, U., Einig, T., Yamamoto, M., Kleeberg, I., Deckwer, W.D., Muller, R.J., Biodegradation of aliphatic-aromatic copolyesters: evaluation of the final biodegradability and ecotoxicological impact of degradation intermediates (2001) Chemosphere, 44, pp. 289-299
  • Xu, M., Shi, X.H., Chen, H.J., Xiao, T., Synthesis and enrichment of a macromolecular surface modifier PP-b-PVP for polypropylene (2010) Appl Surf Sci, 256, pp. 3240-3244
  • Yakacki, C.M., Shandas, R., Lanning, C., Rech, B., Eckstein, A., Gall, K., Unconstrained recovery characterization of shape-memory polymer networks for cardiovascular applications (2007) Biomaterials, 28, pp. 2255-2263
  • Yamanaka, C., Hasimoto, K., Synthesis of new hydrolyzable polyurethanes from L-gulonic acid-derived diols and diisocyanates (2002) J Polym Sci Part A: Polym Chem, 40, pp. 4158-4166
  • Ying, X., Qi, L., Li, X., Zhang, W., Cheng, G., Stimuli-responsive recognition of BSA-imprinted poly vinyl acetate grafted calcium alginate core-shell hydrogel microspheres (2013) J Appl Polym Sci, 127, pp. 3898-3909
  • Zdrahala, R.J., Zdrahala, I.J., Biomedical applications of polyurethanes: a review of past promises, present realities, and a vibrant future (1999) J Biomater Appl, 14, pp. 67-90
  • Zenner, M.D., Xia, Y., Chen, J.S., Kessler, M.R., Polyurethanes from isosorbide-based diisocyanates (2013) ChemSusChem, 6, pp. 1182-1185
  • Zenner, M.D., Madbouly, S.A., Chen, J.S., Kessler, M.R., Unexpected tackifiers from isosorbide (2015) ChemSusChem, 8, pp. 448-451
  • Zhang, F., Cheng, G., Ying, X., Emulsion and macromolecules templated alginate based polymer microspheres (2006) React Funct Polym, 66, pp. 712-719
  • Zhang, Q., Liao, J.-F., Shi, X.-H., Qiu, Y.-G., Chen, H.-J., Surface biocompatible construction of polyurethane by heparinization (2015) J Polym Res, 22, p. 68
  • Zhao, K., Cheng, G., Huang, J., Ying, X., Rebinding and recognition properties of protein-macromolecularly imprinted calcium phosphate/alginate hybrid polymer microspheres (2008) React Funct Polym, 68, pp. 732-741
  • Zhu, Y., Molinier, V., Durand, M., Lavergne, A., Aubry, J.M., Amphiphilic properties of hydrotropes derived from isosorbide: Endo/exo isomeric effects and temperature dependence (2009) Langmuir, 25, pp. 13419-13425
  • Zia, K.M., Barikani, M., Bhatti, I.A., Zuber, M., Bhatti, H.N., Synthesis and characterization of novel, biodegradable, thermally stable chitin-based polyurethane elastomers (2008) J Appl Polym Sci, 110, pp. 769-776
  • Zia, K.M., Bhatti, I.A., Barikani, M., Zuber, M., Sheikh, M.A., XRD studies of chitin-based polyurethane elastomers (2008) Int J Biol Macromol, 43, pp. 136-141
  • Zia, K.M., Zia, F., Zuber, M., Rehman, S., Ahmad, M.N., Alginate based polyurethanes: a review of recent advances and perspective (2015) Int J Biol Macromol, 79, pp. 377-387

Citas:

---------- APA ----------
Manzano, V.E., Kolender, A.A. & Varela, O. (2017) . Synthesis and applications of carbohydrate-based polyurethanes. Industrial Applications of Renewable Biomass Products: Past, Present and Future, 1-43.
http://dx.doi.org/10.1007/978-3-319-61288-1_1
---------- CHICAGO ----------
Manzano, V.E., Kolender, A.A., Varela, O. "Synthesis and applications of carbohydrate-based polyurethanes" . Industrial Applications of Renewable Biomass Products: Past, Present and Future (2017) : 1-43.
http://dx.doi.org/10.1007/978-3-319-61288-1_1
---------- MLA ----------
Manzano, V.E., Kolender, A.A., Varela, O. "Synthesis and applications of carbohydrate-based polyurethanes" . Industrial Applications of Renewable Biomass Products: Past, Present and Future, 2017, pp. 1-43.
http://dx.doi.org/10.1007/978-3-319-61288-1_1
---------- VANCOUVER ----------
Manzano, V.E., Kolender, A.A., Varela, O. Synthesis and applications of carbohydrate-based polyurethanes. Ind. Appl. of Renew. Biomass Prod.: Past, Present and Future. 2017:1-43.
http://dx.doi.org/10.1007/978-3-319-61288-1_1