|
[1] R. Chandra and R. Rustgi, "Biodegradable polymers," Progress in Polymer Science, vol. 23, no. 7, pp. 1273-1335, 1998. [2] I. Vroman and L. Tighzert, "Biodegradable polymers," Materials, vol. 2, no. 2, pp. 307-344, 2009. [3] R. A. Gross and B. Kalra, "Biodegradable polymers for the environment," Science, vol. 297, no. 5582, pp. 803-807, 2002. [4] S. Safari and T. G. van de Ven, "Effect of crystallization conditions on the physical properties of a two-layer glassine paper/polyhydroxybutyrate structure," Journal of Materials Science, vol. 50, no. 10, pp. 3686-3696, 2015. [5] P. Chaiwutthinan, S. Chuayjuljit, S. Srasomsub, and A. Boonmahitthisud, "Composites of poly(lactic acid)/poly(butylene adipate‐co‐terephthalate) blend with wood fiber and wollastonite: Physical properties, morphology, and biodegradability," Journal of Applied Polymer Science, vol. 136, no. 21, DOI: 10.1002/app.47543, 2019. [6] Y. Doi, Microbial polyesters. Vch, 1990. [7] G. E. Luckachan and C. K. S. Pillai, "Biodegradable polymers-a review on recent trends and emerging perspectives," Journal of Polymers and the Environment, vol. 19, no. 3, pp. 637-676, 2011. [8] V. C. Kalia, N. Raizada and V. Sonakya, "Bioplastics," Journal of Scientific and Industrial Research, vol. 59, pp. 433-445, 2000. [9] J. Chen, D. Wu, K. C. Tam, K. Pan and Z. Zheng, "Effect of surface modification of cellulose nanocrystal on nonisothermal crystallization of poly(β-hydroxybutyrate) composites," Carbohydrate Polymers, vol. 157, pp. 1821-1829, 2017. [10] J. Yang, P. Pan, L. Hua, Y. Xie, T. Dong, B. Zhu, Y. Inoue and X. Feng, "Fractionated crystallization, polymorphic crystalline structure, and spherulite morphology of poly(butylene adipate) in its miscible blend with poly(butylene succinate)," Polymer, vol. 52, no. 15, pp. 3460-3468, 2011. [11] R. E. Drumright, P. R. Gruber and D. E. Henton, "Polylactic acid technology," Advanced Materials, vol. 12, no. 23, pp. 1841-1846, 2000. [12] D. Garcia-Garcia, J. Ferri, T. Boronat, J. López-Martínez and R. Balart, "Processing and characterization of binary poly(hydroxybutyrate) (PHB) and poly(caprolactone) (PCL) blends with improved impact properties," Polymer Bulletin, vol. 73, no. 12, pp. 3333-3350, 2016. [13] Y. Doi, Y. Kanesawa, M. Kunioka and T. Saito, "Biodegradation of microbial copolyesters: poly(3-hydroxybutyrate-co-3-hydroxyvalerate) and poly(3-hydroxybutyrate-co-4-hydroxybutyrate)," Macromolecules, vol. 23, no. 1, pp. 26-31, 1990. [14] J. E. Kemnitzer, S. P. McCarthy and R. A. Gross, "Poly(β-hydroxybutyrate) stereoisomers: a model study of the effects of stereochemical and morphological variables on polymer biological degradability," Macromolecules, vol. 25, no. 22, pp. 5927-5934, 1992. [15] R. T. MacDonald, S. P. McCarthy and R. A. Gross, "Enzymatic degradability of poly(lactide): effects of chain stereochemistry and material crystallinity," Macromolecules, vol. 29, no. 23, pp. 7356-7361, 1996. [16] M.-N. Kim, K.-H. Kim, H.-J. Jin, J.-K. Park and J.-S. Yoon, "Biodegradability of ethyl and n-octyl branched poly(ethylene adipate) and poly(butylene succinate)," European Polymer Journal, vol. 37, no. 9, pp. 1843-1847, 2001. [17] S. Holland, A. Jolly, M. Yasin and B. Tighe, "Polymers for biodegradable medical devices: II. Hydroxybutyrate-hydroxyvalerate copolymers: Hydrolytic degradation studies," Biomaterials, vol. 8, no. 4, pp. 289-295, 1987. [18] A. Bhatia, R. Gupta, S. Bhattacharya and H. Choi, "Compatibility of biodegradable poly(lactic acid) (PLA) and poly(butylene succinate) (PBS) blends for packaging application," Korea-Australia Rheology Journal, vol. 19, no. 3, pp. 125-131, 2007. [19] L. Yu, K. Dean and L. Li, "Polymer blends and composites from renewable resources," Progress in Polymer Science, vol. 31, no. 6, pp. 576-602, 2006. [20] X. He and Z. Qiu, "Influence of high molecular weight poly(ethylene adipate) on the crystallization behavior and mechanical properties of biodegradable poly(L-lactide) in their immiscible polymer blend," Polymer Testing, vol. 67, pp. 421-427, 2018. [21] P. Xu, Y. Cao, P. Lv, P. Ma, W. Dong, H. Bai, W. Wang, M. Du and M. Chen, "Enhanced crystallization kinetics of bacterially synthesized poly(3-hydroxybutyrate-co-3-hydroxyhexanate) with structural optimization of oxalamide compounds as nucleators," Polymer Degradation and Stability, vol. 154, pp. 170-176, 2018. [22] W. H. Carothers, "Studies on polymerization and ring formation. I. An introduction to the general theory of condensation polymers," Journal of the American Chemical Society, vol. 51, pp. 2548-2559, 1929. [23] C. Fuller and C. Erickson, "An X-ray study of some linear polyesters," Journal of the American Chemical Society, vol. 59, pp. 344-351, 1937. [24] A. Turner-Jones and C.W. Bunn, "The crystal structure of polyethylene adipate and polyethylene suberate," Acta Crystallographica, vol. 15, pp. 105-113, 1962. [25] R. Liang, Y. C. Chen, C. Q. Zhang, J. Yin, X. L. Liu, L. k. Wang, R. Kong, X. Feng and J. J. Yang, "Crystallization behavior of biodegradable poly(ethylene adipate) modulated by a benign nucleating agent: Zinc phenylphosphonate," Chinese Journal of Polymer Science, vol. 35, pp. 558-568, 2017. [26] E. M. Woo, P. L. Wu, M. C. Wu and K. C. Yan, "Thermal behavior of ring‐band versus maltese‐cross spherulites: case of monomorphic poly(ethylene adipate)," Macromolecular Chemistry and Physics, vol. 207, pp. 2232-2243, 2006. [27] H. Wu and Z. Qiu, "A comparative study of crystallization, melting behavior, and morphology of biodegradable poly(ethylene adipate) and poly(ethylene adipate-co-5 mol% ethylene succinate)," Industrial & Engineering Chemistry Research, vol. 51, no. 40, pp. 13323-13328, 2012. [28] H. Wang, H.-P. Feng, X.-C. Wang, Q.-C. Du and C. Yan, "Crystallization of poly(ethylene adipate) within γ-phase poly(vinylidene fluoride) matrix," Chinese Journal of Polymer Science, vol. 33, no. 6, pp. 823-829, 2015. [29] Z. Jiang and Z. Qiu, "Unusual crystallization behavior of biodegradable poly(ethylene adipate) based nanocomposites induced by graphene oxide," RSC Advances, vol. 5, no. 68, pp. 55486-55491, 2015. [30] R. Liang, Y. Chen, C. Zhang, J. Yin, X. Liu, L. Wang, R. Kong, X. Feng and J. Yang, "Crystallization behavior of biodegradable poly(ethylene adipate) modulated by a benign nucleating agent: Zinc phenylphosphonate," Chinese Journal of Polymer Science, vol. 35, no. 4, pp. 558-568, 2017. [31] F. Bailey Jr., Poly(ethylene oxide). Elsevier, 2012. [32] J. M. Harris, Poly(ethylene glycol) chemistry : biotechnical and biomedical applications. Springer Science & Business Media, 2013. [33] F. Bailey Jr. and R. Callard, "Some properties of poly(ethylene oxide)1 in aqueous solution," Journal of Applied Polymer Science, vol. 1, no. 1, pp. 56-62, 1959. [34] S. A. Bagshaw, E. Prouzet and T. J. Pinnavaia, "Templating of mesoporous molecular sieves by nonionic polyethylene oxide surfactants," Science, vol. 269, no. 5228, pp. 1242-1244, 1995. [35] A. Kidane, G. C. Lantz, S. Jo and K. Park, "Surface modification with PEO-containing triblock copolymer for improved biocompatibility: in vitro and ex vivo studies," Journal of Biomaterials Science, Polymer Edition, vol. 10, no. 10, pp. 1089-1105, 1999. [36] M. K. Chaudhury, A. Chakrabarti and A. Ghatak, "Adhesion-induced instabilities and pattern formation in thin films of elastomers and gels," The European Physical Journal E, vol. 38, no. 7, DIO: 10.1140/epje/i2015-15082-7, 2015. [37] F. J. Li, S. D. Zhang, J. Z. Liang and J. Z. Wang, "Effect of polyethylene glycol on the crystallization and impact properties of polylactide‐based blends," Polymers for Advanced Technologies, vol. 26, no. 5, pp. 465-475, 2015. [38] D. Saha, S. K. Samal, M. Biswal, S. Mohanty and S. K. Nayak, "Preparation and characterization of poly(lactic acid)/poly(ethylene oxide) blend film: effects of poly(ethylene oxide) and poly(ethylene glycol) on the properties," Polymer International, vol. 68, no. 1, pp. 164-172, 2019. [39] Y. Eom, B. Choi and S.-I. Park, "A study on mechanical and thermal properties of PLA/PEO blends," Journal of Polymers and the Environment, vol. 27, no. 2, pp. 256-262, 2019. [40] S. Botros, M. Kenawy, A. Younan and I. El Kashef, "Thermal stability, swelling behaviour and dielectric properties of NBR/PVC-PVAc blends," Kautschuk und Gummi Kunststoffe, vol. 53, no. 12, pp. 722-729, 2000. [41] A. Abdelghany, M. Meikhail and N. Asker, "Synthesis and structural-biological correlation of PVC\PVAc polymer blends," Journal of Materials Research and Technology, vol. 8, no. 5, pp. 3908-3916, 2019. [42] A. M. Gajria, V. Dave, R. A. Gross and S. P. McCarthy, "Miscibility and biodegradability of blends of poly(lactic acid) and poly(vinyl acetate)," Polymer, vol. 37, no. 3, pp. 437-444, 1996. [43] K. S. Kim, I. J. Chin, J. S. Yoon, H. J. Choi, D. C. Lee and K. H. Lee, "Crystallization behavior and mechanical properties of poly(ethylene oxide)/poly(L‐lactide)/poly(vinyl acetate) blends," Journal of Applied Polymer Science, vol. 82, no. 14, pp. 3618-3626, 2001. [44] A. Villiers, "Sur la fermentation de la fécule par l'action du ferment butyriqué," Comptes rendus, vol. 112, pp. 536-538, 1891. [45] S. D. Eastburn and B. Y. Tao, "Applications of modified cyclodextrins," Biotechnology Advances, vol. 12, no. 2, pp. 325-339, 1994. [46] V. J. Stella and R. A. Rajewski, "Cyclodextrins: their future in drug formulation and delivery," Pharmaceutical Research, vol. 14, no. 5, pp. 556-567, 1997. [47] H. Matsuda and H. Arima, "Cyclodextrins in transdermal and rectal delivery," Advanced Drug Delivery Reviews, vol. 36, no. 1, pp. 81-99, 1999. [48] N. Mabuchi and M. Ngoa, "Controlled release powdered flavour preparations and confectioneries containing preparations," Japanese Patent JP, vol. 128, p. 638, 2001. [49] J. Szejtli, "Introduction and general overview of cyclodextrin chemistry," Chemical Reviews, vol. 98, no. 5, pp. 1743-1754, 1998. [50] C. R. Dass and W. Jessup, "Apolipoprotein A‐I, cyclodextrins and liposomes as potential drugs for the reversal of atherosclerosis. A review," Journal of Pharmacy and Pharmacology, vol. 52, no. 7, pp. 731-761, 2000. [51] E. M. Del Valle, "Cyclodextrins and their uses: a review," Process Biochemistry, vol. 39, no. 9, pp. 1033-1046, 2004. [52] A. Harada and M. Kamachi, "Complex formation between poly(ethylene glycol) and α-cyclodextrin," Macromolecules, vol. 23, no. 10, pp. 2821-2823, 1990. [53] E. Schneiderman and A. M. Stalcup, "Cyclodextrins: a versatile tool in separation science," Journal of Chromatography B: Biomedical Sciences and Applications, vol. 745, no. 1, pp. 83-102, 2000. [54] N. Fujishima, K. Kusaka, T. Umino, T. Urushinata and K. Terumi, "Flour based foods containing highly branched cyclodextrins," Japanese Patent JP, vol. 136, pp. 898, 2001. [55] R. Bhardwaj, R. T. Dorr and J. Blanchard, "Approaches to reducing toxicity of parenteral anticancer drug formulations using cyclodextrins," PDA Journal of Pharmaceutical Science and Technology, vol. 54, no. 3, pp. 233-239, 2000. [56] L. Holland, G. Rizzi and P. Malton, "Cosmetic compositions comprising cyclic oligosaccharides and fragrance," PCT International Application WO, vol. 67, p. 716, 1999. [57] A. R. Hedges, "Industrial applications of cyclodextrins," Chemical Reviews, vol. 98, no. 5, pp. 2035-2044, 1998. [58] J. S. Chawla and M. M. Amiji, "Biodegradable poly(ε-caprolactone) nanoparticles for tumor-targeted delivery of tamoxifen," International Journal of Pharmaceutics, vol. 249, no. 1-2, pp. 127-138, 2002. [59] W. Han, X. Liao, B. He, Q. Yang and G. Li, "Disclosing the crystallization behavior and morphology of poly(ϵ‐caprolactone) within poly(ϵ‐caprolactone)/poly(l‐lactide) blends," Polymer International, vol. 67, no. 5, pp. 566-576, 2018. [60] C. H. Kim, K. Y. Cho, E. J. Choi and J. K. Park, "Effect of P(l LA‐co‐εCL) on the compatibility and crystallization behavior of PCL/PLLA blends," Journal of Applied Polymer Science, vol. 77, no. 1, pp. 226-231, 2000. [61] P. Ghoroghchian, G. Li, D. Levine, K. Davis, F. Bates, D. Hammer and M. Therien, "Bioresorbable vesicles formed through spontaneous self-assembly of amphiphilic poly(ethylene oxide)-block-polycaprolactone," Macromolecules, vol. 39, no. 5, pp. 1673-1675, 2006. [62] S. Zhou, X. Deng and H. Yang, "Biodegradable poly(ε-caprolactone)-poly(ethylene glycol) block copolymers: characterization and their use as drug carriers for a controlled delivery system," Biomaterials, vol. 24, no. 20, pp. 3563-3570, 2003. [63] T. Dong, T. Mori, P. Pan, W. Kai, B. Zhu and Y. Inoue, "Crystallization behavior and mechanical properties of poly(ε‐caprolactone)/cyclodextrin biodegradable composites," Journal of Applied Polymer Science, vol. 112, no. 4, pp. 2351-2357, 2009. [64] A. Prasannan, T.-L. Bich-Tram, D.-Y. Hsu, P.-D. Hong and G.-R. Pan, "Nucleation effects of α-cyclodextrin inclusion complexes on the crystallization behavior of biodegradable poly(1,4-butylene adipate)," CrystEngComm, vol. 15, no. 25, pp. 5119-5126, 2013. [65] J.-H. Lin and E. M. Woo, "Correlation between interactions, miscibility, and spherulite growth in crystalline/crystalline blends of poly(ethylene oxide) and polyesters," Polymer, vol. 47, no. 19, pp. 6826-6835, 2006. [66] C. S. Chang, E. M. Woo, and J. H. Lin, "Miscibility with asymmetrical interactions in blends of two carbonyl‐containing polymers: Poly(vinyl acetate) with aliphatic polyesters," Macromolecular Chemistry and Physics, vol. 207, no. 15, pp. 1404-1413, 2006. [67] W. Wu, W. Chiu and W. Liau, "Casting solvent effect on crystallization behavior of poly(vinyl acetate)/poly(ethylene oxide) blends: DSC study," Journal of Applied Polymer Science, vol. 64, no. 3, pp. 411-421, 1997. [68] Z. Qiu, T. Ikehara and T. Nishi, "Miscibility and crystallization of poly(ethylene oxide) and poly(ε-caprolactone) blends," Polymer, vol. 44, no. 10, pp. 3101-3106, 2003. [69] G. Z. Papageorgiou and D. N. Bikiaris, "Biodegradable poly(alkylene succinate) blends: Thermal behavior and miscibility study," Journal of Polymer Science Part B: Polymer Physics, vol. 44, no. 3, pp. 584-597, 2006. [70] Y. Kumagai and Y. Doi, "Enzymatic degradation and morphologies of binary blends of microbial poly(3-hydroxy butyrate) with poly(ε-caprolactone), poly(1,4-butylene adipate and poly(vinyl acetate)," Polymer Degradation and Stability, vol. 36, no. 3, pp. 241-248, 1992. [71] S. Krimm and A. V. Tobolsky, "Quantitative x‐ray studies of order in amorphous and crystalline polymers. Quantitative x‐ray determination of crystallinity in polyethylene," Journal of Polymer Science, vol. 7, no. 1, pp. 57-76, 1951. [72] C. Yu, Q. Xie, Y. Bao, G. Shan and P. Pan, "Crystalline and spherulitic morphology of polymers crystallized in confined systems," Crystals, vol. 7, no. 5, DOI: 10.3390/cryst7050147, 2017. [73] A. Peterlin, "Folded chain model of highly drawn polyethylene," Polymer Engineering & Science, vol. 9, no. 3, pp. 172-181, 1969. [74] W. Chen, D. J. David, W. J. MacKnight and F. E. Karasz, "Miscibility and morphology of blends of poly (3-hydroxybutyrate) and poly(vinyl butyral)," Polymer, vol. 42, no. 20, pp. 8407-8414, 2001. [75] A. Scallan, "A quantitative picture of the fringed micellar model of cellulose," Textile Research Journal, vol. 41, no. 8, pp. 647-653, 1971. [76] C. H. M. Weber, A. Chiche and G. Krausch, "Single lamella nanoparticles of polyethylene," Nano Letters, vol. 7, no. 7, pp. 2024-2029, 2007. [77] P. B. McDaniel, J. M. Deitzel and J. W. Gillespie Jr, "Structural hierarchy and surface morphology of highly drawn ultra high molecular weight polyethylene fibers studied by atomic force microscopy and wide angle X-ray diffraction," Polymer, vol. 69, pp. 148-158, 2015. [78] S. Bai and Q. Wang, "Miscible crystalline/crystalline polymer blends of polyoxymethylene copolymer/poly(ethylene oxide) with interpenetrated spherulites and enhanced properties," Journal of Vinyl and Additive Technology, vol. 22, no. 4, pp. 479-486, 2016. [79] S. Wang and D. Yang, "Effect of copolymerized ethylene unit on the crystallization behavior of poly (propylene-co-ethylene) s," Polymer, vol. 45, no. 22, pp. 7711-7718, 2004. [80] M. Stürzel, T. Hees, M. Enders, Y. Thomann, H. Blattmann and R. Mülhaupt, "Nanostructured polyethylene reactor blends with tailored trimodal molar mass distributions as melt-processable all-polymer composites," Macromolecules, vol. 49, no. 21, pp. 8048-8060, 2016. [81] R. K. Sahoo, S. Mohanty and S. K. Nayak, "Effect of silver nanoparticles on the morphology, crystallization, and melting behavior of polypropylene: a study on non-isothermal crystallization kinetics," Polymer Science, Series A, vol. 58, no. 3, pp. 443-453, 2016. [82] G. O. Shonaike and S. G. Advani, "Advanced polymeric materials: structure property relationships," CRC Press, 2003. [83] H. Keith and F. Padden Jr, "Spherulitic crystallization from the melt. I. Fractionation and impurity segregation and their influence on crystalline morphology," Journal of Applied Physics, vol. 35, no. 4, pp. 1270-1285, 1964. [84] P. J. Flory, "Phase equilibria in polymer systems," Principles of Polymer Chemistry, vol. 13, pp. 541-594, 1953. [85] J. D. Hoffman, G. T. Davis and J. I. Lauritzen, "The rate of crystallization of linear polymers with chain folding," Treatise on Solid State Chemistry: Springer, pp. 497-614, 1976. [86] M. Muthukumar, "Nucleation in polymer crystallization," Advances in Chemical Physics, vol. 128, pp. 1-64, 2004. [87] W. Nesse, Introduction to optical mineralogy. Oxford Univrsity Press, 1991. [88] C. E. Carraher Jr, Seymour/Carraher's polymer chemistry. CRC Press, 2007. [89] K. Domike, E. Hardin, D. Armstead and A. Donald, "Investigating the inner structure of irregular β-lactoglobulin spherulites," The European Physical Journal E, vol. 29, no. 2, pp. 173-182, 2009. [90] M. Avrami, "Kinetics of phase change. II transformation‐time relations for random distribution of nuclei," The Journal of Chemical Physics, vol. 8, no. 2, pp. 212-224, 1940. [91] M. Avrami, "Granulation, phase change, and microstructure kinetics of phase change. III," The Journal of Chemical Physics, vol. 9, no. 2, pp. 177-184, 1941. [92] J. Lauritzen and J. D. Hoffman, "Theory of formation of polymer crystals with folded chains in dilute solution," Journal of Research of the National Bureau of Standards A, vol. 64, no. 1, DOI: 10.6028/jres.064A.007, 1960. [93] B. Wunderlich, Macromolecular physics. Elsevier, 2012. [94] T. Ozawa, "Non-isothermal kinetics of diffusion and its application to thermal analysis," Journal of Thermal Analysis and Calorimetry, vol. 5, no. 5-6, pp. 563-576, 1973. [95] T. Ozawa, "Non-isothermal kinetics and generalized time," Thermochimica Acta, vol. 100, no. 1, pp. 109-118, 1986. [96] M. Di Lorenzo and C. Silvestre, "Non-isothermal crystallization of polymers," Progress in Polymer Science, vol. 24, no. 6, pp. 917-950, 1999. [97] T. Liu, Z. Mo and H. Zhang, "Nonisothermal crystallization behavior of a novel poly(aryl ether ketone): PEDEKmK," Journal of Applied Polymer Science, vol. 67, no. 5, pp. 815-821, 1998. [98] H. E. Kissinger, “Variation of peak temperature with heating rate in differential thermal analysis.” Journal of Research of the National Bureau of Standards, 57, 217, 1956. [99] R. Takhor, "Advances in nucleation and crystallization of glasses," American Ceramics Society, Columbus, vol. 166, 1971. [100] G. Fulmer, A. Miller, N. Sherden, H. Gottlieb, A. Nudelman, B. Stoltz, J. Bercaw and K. Goldberg, "NMR chemical shifts of trace impurities: common laboratory solvents, organics, and gases in deuterated solvents relevant to the organometallic chemist," Organometallics, vol. 29, no. 9, pp. 2176-2179, 2010. [101] L. T. Lee and C.T. Yang, "Investigations on green blends comprising biodegradable polymer and ionic liquid," Polymers, vol. 8, no. 12, DOI: 10.3390/polym8120444, 2016. [102] T. Dong, Y. He, B. Zhu, K.-M. Shin, and Y. Inoue, "Nucleation mechanism of α-cyclodextrin-enhanced crystallization of some semicrystalline aliphatic polymers," Macromolecules, vol. 38, no. 18, pp. 7736-7744, 2005. [103] G. Narayanan, B. S. Gupta and A. E. Tonelli, "Enhanced mechanical properties of poly(ε-caprolactone) nanofibers produced by the addition of non-stoichiometric inclusion complexes of poly(ε-caprolactone) and α-cyclodextrin," Polymer, vol. 76, pp. 321-330, 2015. [104] M. S. Nikolic, M. Mitric, A. Dapcevic, and J. Djonlagic, "Viscoelastic properties of poly(ε‐caprolactone)/clay nanocomposites in solid and in melt state," Journal of Applied Polymer Science, vol. 133, no. 3, DOI: 10.1002/app.42896, 2016. [105] K. Shin, T. Dong, Y. He, Y. Taguchi, A. Oishi, H. Nishida and Y. Inoue, "Inclusion complex formation between α‐cyclodextrin and biodegradable aliphatic polyesters," Macromolecular Bioscience, vol. 4, no. 12, pp. 1075-1083, 2004. [106] T. Dong, W. Kai, P. Pan, A. Cao and Y. Inoue, "Effects of host− guest stoichiometry of α-cyclodextrin−aliphatic polyester inclusion complexes and molecular weight of guest polymer on the crystallization behavior of aliphatic polyesters," Macromolecules, vol. 40, no. 20, pp. 7244-7251, 2007. [107] A. Harada, Y. Kawaguchi, T. Nishiyama, and M. Kamachi, "Complex formation of poly(ε‐caprolactone) with cyclodextrin," Macromolecular Rapid Communications, vol. 18, no. 7, pp. 535-539, 1997. [108] H. Iguchi, S. Uchida, Y. Koyama and T. Takata, "Polyester-containing α-cyclodextrin-based polyrotaxane: Synthesis by living ring-opening polymerization, polypseudorotaxanation, and end capping using nitrile N-oxide," ACS Macro Letters, vol. 2, no. 6, pp. 527-530, 2013. [109] L. Huang, E. Allen and A. E. Tonelli, "Study of the Inclusion Compounds Formed between α-Cyclodextrin and High Molecular Weight Poly(ethylene oxide) and Poly(ϵ-caprolactone)," Polymer, vol. 39, no. 20, pp. 4857-4865, 1998. [110] J. Yang, P. Pan, T. Dong and Y. Inoue, "Crystallization kinetics and crystalline structure of biodegradable poly(ethylene adipate)," Polymer, vol. 51, no. 3, pp. 807-815, 2010.
|