Page 17 - AJWEP-v22i3
P. 17
Standardising plastic terminology
doi: 10.1038/s41578-021-00320-0 doi: 10.1063/1.1747672
25. Valino AD, Dizon JRC, Espera AH, Chen Q, Messman J, 39. Khanna YP, Reimschuessel AC, Banerjie A,
Advincula RC. Advances in 3D printing of thermoplastic Altman C. Memory effects in polymers. II. Processing
polymer composites and nanocomposites. Prog Polym history vs. Crystallization rate of nylon 6-observation
Sci. 2019;98:101162. of phenomenon and product behavior. Polym Eng Sci.
doi: 10.1016/J.PROGPOLYMSCI.2019.101162 1988;28(24):1600-1606.
26. Zhao HY, Yu MY, Liu J, Li X, Min P, Yu ZZ. Efficient doi: 10.1002/pen.760282405
preconstruction of three-dimensional graphene 40. Graessley WW. Entangled linear, branched and network
networks for thermally conductive polymer composites. polymer systems - molecular theories. In: Synthesis and
Nanomicro Lett. 2022;14(1):129. Degradation Rheology and Extrusion. Vol 47. Germany:
doi: 10.1007/S40820-022-00878-6 Springer-Verlag; 1982. p. 67-117.
27. Wang S, Luo Z, Liang J, et al. Polymer nanocomposite doi: 10.1007/BFb0038532
dielectrics: Understanding the matrix/particle interface. 41. Kohlgrüber K, Bierdel M, Rust H. Plastics Compounding
ACS Nano. 2022;16(9):13612-13656. and Polymer Processing - Fundamentals, Machines,
doi: 10.1021/ACSNANO.2C07404 Equipment, Application Technology. Germany: Carl
28. Dong J, Hu R, Niu Y, et al. Enhancing high-temperature Hanser Verlag, München; 2021.
capacitor performance of polymer nanocomposites by 42. Reiter G. The memorizing capacity of polymers. J Chem
adjusting the energy level structure in the micro-/meso- Phys. 2020;152(15):150901.
scopic interface region. Nano Energy. 2022;99:107314. doi: 10.1063/1.5139621
doi: 10.1016/J.NANOEN.2022.107314 43. Tadmor Z, Gogos CG. Principles of Polymer Processing.
29. Koltzenburg S, Maskos M, Nuyken O. Polymer 2 ed. Hoboken, NJ, USA: John Wiley and Sons,
nd
Chemistry. Berlin, Germany: Springer Berlin Heidelberg; Inc.; 2006.
2023. p. 14197. 44. Saldívar-Guerra E, Vivaldo-Lima E, editors. Handbook
30. Zhu J, Wang C. Biodegradable plastics: Green hope or of Polymer Synthesis, Characterization, and Processing.
greenwashing? Mar Pollut Bull. 2020;161:111774. United States: Wiley; 2013.
doi: 10.1016/j.marpolbul.2020.111774 doi: 10.1002/9781118480793
31. Millican JM, Agarwal S. Plastic pollution: A material 45. Desidery L, Lanotte M. Polymers and plastics: Types,
problem? Macromolecules. 2021;54(10):4455-4469. properties, and manufacturing. In: Plastic Waste for
doi: 10.1021/acs.macromol.0c02814 Sustainable Asphalt Roads. Amsterdam: Elsevier; 2022.
32. Law KL, Narayan R. Reducing environmental plastic p. 3-28.
pollution by designing polymer materials for managed doi: 10.1016/B978-0-323-85789-5.00001-0
end-of-life. Nat Rev Mater. 2021;7(2):104-116. 46. Seiffert S. Physical Chemistry of Polymers - A
doi: 10.1038/s41578-021-00382-0 Conceptual Introduction. Berlin, Germany: Walter De
33. Figge F, Thorpe AS, Gutberlet M. Definitions of the Gruyter GmbH; 2020.
circular economy: Circularity matters. Ecol Econ. 47. Akiba M, Hashim AS. Vulcanization and crosslinking in
2023;208:107823. elastomers. Prog Polym Sci. 1997;22(3):475-521.
doi: 10.1016/j.ecolecon.2023.107823 doi: 10.1016/S0079-6700(96)00015-9
34. Yu J, Yu DW, Checkla DM, Freedberg IM, 48. Rajesh Babu R, Shibulal GS, Chandra AK, Naskar K.
Bertolino AP. Human hair keratins. J Invest Dermatol. Compounding and vulcanization. In: Visakh P, Thomas S,
1993;101(1):S56-S59. Chandra A, Mathew A, editors. Advances in Elastomers
doi: 10.1016/0022-202X(93)90501-8 I: Advanced Structured Materials. Vol 11. Berlin:
35. Branden C, Tooze J. Introduction to Protein Structure. Springer Nature; 2013. p. 83-135.
2 ed. NY, USA: Garland Science, Taylor and Francis doi: 10.1007/978-3-642-20925-3_4
nd
Group, LLC; 1999. 49. Ge C, Wang S, Zheng W, Zhai W. Preparation of
36. Ward WS. Deoxyribonucleic acid loop domain tertiary microcellular thermoplastic polyurethane (TPU) foam and
structure in mammalian spermatozoa. Biol Reprod. its tensile property. Polym Eng Sci. 2018;58:E158-E166.
1993;48(6):1193-1201. doi: 10.1002/PEN.24813
doi: 10.1095/biolreprod48.6.1193 50. Datta J, Kasprzyk P. Thermoplastic polyurethanes
37. Saenger W. Principles of Nucleic Acid Structure. derived from petrochemical or renewable
New York: Springer; 1984. resources: A comprehensive review. Polym Eng Sci.
doi: 10.1007/978-1-4612-5190-3 2018;58:E14-E35.
38. Riseman J, Kirkwood JG. The intrinsic viscosity, doi: 10.1002/PEN.24633
translational and rotatory diffusion constants of 51. Johnson L, Samms J. Thermoplastic polyurethane
rod-like macromolecules in solution. J Chem Phys. technologies for the textile industry. J Coated Fabr.
1950;18(4):512-516. 1997;27(1):48-62.
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