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Published in: Journal of Coatings Technology and Research 2/2018

08-11-2017

Glycolytic depolymerization of PET waste using MP-diol and utilization of recycled product for UV-curable wood coating

Authors: Vandana Jamdar, Mukesh Kathalewar, Anagha Sabnis

Published in: Journal of Coatings Technology and Research | Issue 2/2018

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Abstract

Polyethylene terephthalate (PET) waste recycling has become a worldwide research interest for industries and academic institutes due its inevitable environmental impact. The main objective of current research work is to target efficient recycling of PET waste from mineral water bottles by the glycolysis method and subsequent use of the recycled product for value-added coating application. In the present study, we report on MP-diol (2-methyl-1,3-propanediol) which is not explored much for the chemical recycling of PET, having a branched aliphatic diol with two primary hydroxyls, for glycolysis reaction. The reaction parameters were optimized for microwave-assisted technique by varying the ratio of raw materials, reaction time, temperature, and power. The reaction parameters were optimized, and the recycled oligomeric product (OPETMPD) was separated, purified, and characterized by chemical and spectroscopic methods. Subsequently, dimethacrylated oligoesters of PET oligomer (UV oligomer) were synthesized by methacrylation of the glycolyzed PET product (OPETMPD). The synthesized UV oligomer was evaluated using chemical and spectroscopic methods. Ultraviolet (UV) radiation-curable formulations were prepared using synthesized UV oligomer and applied on wooden panels. The coatings were cured using UV-curing machine and evaluated for their performance properties. The partial replacement of UV oligomer in UV formulations exhibited comparative coating performance properties with respect to conventional UV formulation.

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Literature
1.
go back to reference Nikles, DE, Farahat, MS, “New Motivation for the Depolymerization Products Derived from Poly (Ethylene Terephthalate) (PET) Waste: A Review.” Macromol. Mater. Eng., 290 13–30 (2005)CrossRef Nikles, DE, Farahat, MS, “New Motivation for the Depolymerization Products Derived from Poly (Ethylene Terephthalate) (PET) Waste: A Review.” Macromol. Mater. Eng., 290 13–30 (2005)CrossRef
2.
go back to reference Paszun, D, Spychaj, T, “Chemical Recycling of Poly(ethylene terephthalate).” Ind. Eng. Chem. Res., 36 (4) 1373–1383 (1997)CrossRef Paszun, D, Spychaj, T, “Chemical Recycling of Poly(ethylene terephthalate).” Ind. Eng. Chem. Res., 36 (4) 1373–1383 (1997)CrossRef
3.
go back to reference Achilias, D, Karayannidis, G, “The Chemical Recycling of PET in the Framework of Sustainable Development.” Water Air Soil Pollut. Focus, 4 385–396 (2004)CrossRef Achilias, D, Karayannidis, G, “The Chemical Recycling of PET in the Framework of Sustainable Development.” Water Air Soil Pollut. Focus, 4 385–396 (2004)CrossRef
4.
go back to reference Sinha, V, Patel, M, Patel, J, “Pet Waste Management by Chemical Recycling: A Review.” J. Polym. Environ., 18 8–25 (2010)CrossRef Sinha, V, Patel, M, Patel, J, “Pet Waste Management by Chemical Recycling: A Review.” J. Polym. Environ., 18 8–25 (2010)CrossRef
5.
go back to reference Al-Sabagh, AM, Yehia, FZ, Eshaq, Gh, Rabie, AM, El Metwally, AE, “Greener Routes for Recycling of Polyethylene Terephthalate.” Egypt. J. Petrol, 25 (1) 53–64 (2016)CrossRef Al-Sabagh, AM, Yehia, FZ, Eshaq, Gh, Rabie, AM, El Metwally, AE, “Greener Routes for Recycling of Polyethylene Terephthalate.” Egypt. J. Petrol, 25 (1) 53–64 (2016)CrossRef
6.
go back to reference Geyer, B, Lorenz, G, Kandelbauer, A, “Recycling of Poly (ethylene terephthalate)—A Review Focusing on Chemical Methods.” eXPRESS Poly Lett., 10 (7) 559–586 (2016)CrossRef Geyer, B, Lorenz, G, Kandelbauer, A, “Recycling of Poly (ethylene terephthalate)—A Review Focusing on Chemical Methods.” eXPRESS Poly Lett., 10 (7) 559–586 (2016)CrossRef
7.
go back to reference Radenkov, P, Radenkov, M, Grancharov, G, Troev, K, “Direct Usage of Products of Poly(ethylene terephthalate) Glycolysis for Manufacturing of Glass-Fibre-Reinforced Plastics.” Eur. Polym. J., 39 1223–1228 (2003)CrossRef Radenkov, P, Radenkov, M, Grancharov, G, Troev, K, “Direct Usage of Products of Poly(ethylene terephthalate) Glycolysis for Manufacturing of Glass-Fibre-Reinforced Plastics.” Eur. Polym. J., 39 1223–1228 (2003)CrossRef
8.
go back to reference Colomines, G, Robin, J, Tersac, G, “Study of the Glycolysis of PET by Oligoesters.” Polymer, 46 3230–3247 (2005)CrossRef Colomines, G, Robin, J, Tersac, G, “Study of the Glycolysis of PET by Oligoesters.” Polymer, 46 3230–3247 (2005)CrossRef
9.
go back to reference Dutt, K, Soni, RK, “A Review on Synthesis of Value Added Products from Polyethylene Terephthalate (PET) Waste.” Polym. Sci. Ser. B, 55 430–452 (2013)CrossRef Dutt, K, Soni, RK, “A Review on Synthesis of Value Added Products from Polyethylene Terephthalate (PET) Waste.” Polym. Sci. Ser. B, 55 430–452 (2013)CrossRef
10.
go back to reference Hoogenboom, R, Schubert, U, “Microwave-Assisted Polymer Synthesis: Recent Developments in a Rapidly Expanding Field of Research.” Macromol. Rapid Commun., 28 368–386 (2007)CrossRef Hoogenboom, R, Schubert, U, “Microwave-Assisted Polymer Synthesis: Recent Developments in a Rapidly Expanding Field of Research.” Macromol. Rapid Commun., 28 368–386 (2007)CrossRef
11.
go back to reference Surati, M, Jauhari, S, Desai, KR, “A Brief Review: Microwave Assisted Organic Reaction.” Arch. Appl. Sci. Res., 4 (1) 645–661 (2012) Surati, M, Jauhari, S, Desai, KR, “A Brief Review: Microwave Assisted Organic Reaction.” Arch. Appl. Sci. Res., 4 (1) 645–661 (2012)
12.
go back to reference Jamdar, V, Kathalewar, M, Jagtap, RN, Dubey, KA, Sabnis, A, “Effect of γ-Irradiation on Glycolysis of PET Waste and Preparation of Ecofriendly Coatings Using Bio-Based and Recycled Materials.” Polym. Eng. Sci., 55 (11) 2653–2660 (2015)CrossRef Jamdar, V, Kathalewar, M, Jagtap, RN, Dubey, KA, Sabnis, A, “Effect of γ-Irradiation on Glycolysis of PET Waste and Preparation of Ecofriendly Coatings Using Bio-Based and Recycled Materials.” Polym. Eng. Sci., 55 (11) 2653–2660 (2015)CrossRef
13.
go back to reference Karayannidis, GP, Nikolaidis, AK, Sideridou, ID, Bikiaris, DN, Achilias, DS, “Chemical Recycling of PET by Glycolysis: Polymerization and Characterization of the Dimethacrylated Glycolysate.” Macromol. Mater. Eng., 291 1338–1347 (2006)CrossRef Karayannidis, GP, Nikolaidis, AK, Sideridou, ID, Bikiaris, DN, Achilias, DS, “Chemical Recycling of PET by Glycolysis: Polymerization and Characterization of the Dimethacrylated Glycolysate.” Macromol. Mater. Eng., 291 1338–1347 (2006)CrossRef
14.
go back to reference Soni, RK, Teotia, M, Dutt, K, “Studies on Synthesis and Characterization of a Novel Acrylic Aromatic Amide Oligomer of Aminolysed End Products Generated from Pet Waste with Hydrazine Monohydrate and Its Photocuring with Acrylate Monomers.” J. Appl. Polym. Sci., 118 638–645 (2010) Soni, RK, Teotia, M, Dutt, K, “Studies on Synthesis and Characterization of a Novel Acrylic Aromatic Amide Oligomer of Aminolysed End Products Generated from Pet Waste with Hydrazine Monohydrate and Its Photocuring with Acrylate Monomers.” J. Appl. Polym. Sci., 118 638–645 (2010)
15.
go back to reference ASTM D-1980, 1987 (reapproved 1998), Standard Test Method for Acid Value of Fatty Acids and Polymerized Fatty Acids, United States ASTM D-1980, 1987 (reapproved 1998), Standard Test Method for Acid Value of Fatty Acids and Polymerized Fatty Acids, United States
16.
go back to reference ASTM D 1957-86 (Reapproved 2001), Standard Test Method for Hydroxyl Value of Fatty Oils and Acids ASTM D 1957-86 (Reapproved 2001), Standard Test Method for Hydroxyl Value of Fatty Oils and Acids
17.
go back to reference ASTM D-1959, 1997, Standard Test Method for Iodine Value of Drying Oils and Fatty Acids, United States ASTM D-1959, 1997, Standard Test Method for Iodine Value of Drying Oils and Fatty Acids, United States
18.
go back to reference ASTM D 523-67, Standard Test Method for Specular Gloss. ASTM D 523-67, Standard Test Method for Specular Gloss.
19.
go back to reference ASTM D-3359-02, Standard Test Methods for Measuring Adhesion by Tape Test. ASTM D-3359-02, Standard Test Methods for Measuring Adhesion by Tape Test.
20.
go back to reference ASTM D-3363-00, Standard Test Method for Film Hardness by Pencil Test. ASTM D-3363-00, Standard Test Method for Film Hardness by Pencil Test.
21.
go back to reference ASTM D-4752-03, Standard Test Method for Measuring MEK Resistance of Ethyl Silicate (Inorganic) Zinc Rich Primers by Solvent Rub. ASTM D-4752-03, Standard Test Method for Measuring MEK Resistance of Ethyl Silicate (Inorganic) Zinc Rich Primers by Solvent Rub.
22.
go back to reference Kathalewar, M, Sabnis, A, Waghoo, G, “Effect of Incorporation of Surface Treated Zinc Oxide on Non-isocyanate Polyurethane Based Nano-composite Coatings.” Prog. Org. Coat., 76 (9) 1215–1229 (2013)CrossRef Kathalewar, M, Sabnis, A, Waghoo, G, “Effect of Incorporation of Surface Treated Zinc Oxide on Non-isocyanate Polyurethane Based Nano-composite Coatings.” Prog. Org. Coat., 76 (9) 1215–1229 (2013)CrossRef
23.
go back to reference ASTM D 570-98 (2010), Standard Test Method for Water Absorption of Plastics ASTM D 570-98 (2010), Standard Test Method for Water Absorption of Plastics
24.
go back to reference ASTM D 3023-98, Standard Practice for Determination of Resistance of Factory-Applied Coatings on Wood Products to Stains and Reagents ASTM D 3023-98, Standard Practice for Determination of Resistance of Factory-Applied Coatings on Wood Products to Stains and Reagents
25.
go back to reference Pavia, DL, Lampman, GM, Kriz, GS, Introduction to Spectroscopy, 4th ed. Brooks/Cole, Cengage Learning Inc., United States (2009) Pavia, DL, Lampman, GM, Kriz, GS, Introduction to Spectroscopy, 4th ed. Brooks/Cole, Cengage Learning Inc., United States (2009)
26.
go back to reference Silverstein, RM, Webster, FX, Kiemle, DJ, Spectrometric Identification of Organic Compounds, pp. 127–227. Wiley, NE York (2005) Silverstein, RM, Webster, FX, Kiemle, DJ, Spectrometric Identification of Organic Compounds, pp. 127–227. Wiley, NE York (2005)
Metadata
Title
Glycolytic depolymerization of PET waste using MP-diol and utilization of recycled product for UV-curable wood coating
Authors
Vandana Jamdar
Mukesh Kathalewar
Anagha Sabnis
Publication date
08-11-2017
Publisher
Springer US
Published in
Journal of Coatings Technology and Research / Issue 2/2018
Print ISSN: 1547-0091
Electronic ISSN: 1935-3804
DOI
https://doi.org/10.1007/s11998-017-9992-8

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