Morphology, rheology and biodegradation of oxo-degradable polypropylene/polylactide blends
-
Dev K. Mandal
, Pramod K. Bajpai
Abstract
The blends of polypropylene (PP)/polylactide (PLA) with or without compatibilizer, and with pro-oxidant (cobalt stearate/calcium stearate) and pro-oxidant filled PP were prepared by using the melt blending technique. Films of these blends were prepared by compression molding. PP85PL15 and PP85PL15MA4 were the optimum blends from the tensile strength point of view. The improvement in the tensile strength of PP85PL15MA4 blend was achieved by addition of 4 phr compatibilizer. Cobalt stearate and calcium stearate were added separately to PP85PL15MA4 blend in 0.2% (w/w) ratio. The optimized blends were further characterized by differential scanning calorimetry, X-ray diffraction, rheological studies, scanning electron microscopy (SEM) and biodegradability test. Rheological studies confirmed the pseudo-plastic nature of all the blend samples. SEM studies have revealed that the addition of PLA in PP85PL15 enhances the void and roughness on the blend. All the prepared blends have biodegraded in the composting environment and the blend containing pro-oxidant biodegraded to the maximum extent.
Acknowledgements
The authors gratefully acknowledge the financial support from the Department of Atomic Energy-Board of Research in Nuclear Sciences (DAE-BRNS), Bhabha Atomic Research Centre, Govt. of India through sanction no. 35/14/08/2014-BRNS. Special thanks go to Dr. Debaprasad Mandal, Assistant Professor, Department of Chemistry, IIT Ropar, Punjab, for helping with the DSC experiments.
References
[1] Arkatkar A, Arutchelvi J, Sudhakar M, Bhaduri S, Uppara PV, Doble M. Environ. Eng. J. 2009, 2, 68–80.10.2174/1874829500902010068Suche in Google Scholar
[2] Sarker M, Rashid MM, Rahman MS. Int. J. Appl. Chem. 2012, 8, 153–163.Suche in Google Scholar
[3] Kaczmarek H, Ołdak D, Malanowski P, Chaberska H. Polym. Degrad. Stab. 2005, 88, 189–198.10.1016/j.polymdegradstab.2004.04.017Suche in Google Scholar
[4] Steller R, Meissner W. Polym. Degrad. Stab. 1998, 60, 471–480.10.1016/S0141-3910(97)00110-9Suche in Google Scholar
[5] Ramis X, Cadenato A, Salla J, Morancho J, Valles A, Contat L, Ribes A. Polym. Degrad. Stab. 2004, 86, 483–491.10.1016/j.polymdegradstab.2004.05.021Suche in Google Scholar
[6] Morancho J, Ramis X, Fernández X, Cadenato A, Salla J, Vallés A, Contat L, Ribes, A. Polym. Degrad. Stab. 2006, 91, 44–51.10.1016/j.polymdegradstab.2005.04.029Suche in Google Scholar
[7] Orhan Y, Hrenovic J, Buyukgungor H. Acta. Chim. Slov. 2004, 51, 579–588.Suche in Google Scholar
[8] Jain K, Madhu G, Bhunia H, Bajpai PK, Reddy MS. J. Polym. Eng. 2014, 31, 63–76.Suche in Google Scholar
[9] Jain K, Madhu G, Bhunia H, Bajpai PK, Nando GB, Reddy MS. J. Polym. Eng. 2015, 35, 407–415.10.1515/polyeng-2014-0179Suche in Google Scholar
[10] Rutkowska M, Jastrzębska M, Janik H. React. Funct. Polym. 1998, 38, 27–30.10.1016/S1381-5148(98)00029-7Suche in Google Scholar
[11] Jain K, Bhunia H, Bajpai PK, (M. Sc. thesis) Thapar Unviersity Digital Repository, http://hdl.handle.net/10266/1522, (accessed July 2016).Suche in Google Scholar
[12] Kumar M, Mohanty S, Nayak S, Parvaiz MR. Bioresour. Technol. 2010, 101, 8406–8415.10.1016/j.biortech.2010.05.075Suche in Google Scholar PubMed
[13] Singh G, Bhunia H, Rajor A, Choudhary V. Polym. Bull. 2011, 66, 939–953.10.1007/s00289-010-0367-xSuche in Google Scholar
[14] Singh G, Bhunia H, Bajpai PK, Choudhary V. J. Polym. Eng. 2012, 32, 59–66.10.1515/polyeng-2011-0106Suche in Google Scholar
[15] Madhu G, Bhunia H, Bajpai PK. J. Polym. Mater. 2014, 31, 381–395.Suche in Google Scholar
[16] Ying-Chen Z, Hong-Yan W, Yi-Ping Q. Bioresour. Technol. 2010, 101, 7944–7950.10.1016/j.biortech.2010.05.007Suche in Google Scholar PubMed
[17] Choudhary P, Mohanty S, Nayak SK, Unnikrishnan L. J. Appl. Polym. Sci. 2011, 121, 3223–3237.10.1002/app.33866Suche in Google Scholar
[18] Sabet SS, Katbab A. J. Appl. Polym. Sci. 2009, 111, 1954–1963.10.1002/app.29210Suche in Google Scholar
[19] Simoes C, Viana J, Cunha A. J. Appl. Polym. Sci. 2009, 112, 345–352.10.1002/app.29425Suche in Google Scholar
[20] Choi NS, Kim CH, Cho KY, Park JK. J. Appl. Polym. Sci. 2002, 86, 1892–1898.10.1002/app.11134Suche in Google Scholar
[21] Urtuvia V, Villegas P, González M, Seeger M. Int. J. Biol. Macromol. 2014, 70, 208–213.10.1016/j.ijbiomac.2014.06.001Suche in Google Scholar
[22] Zhang L, Deng X, Zhao S, Huang Z. J. Appl. Polym. Sci. 1997, 65, 1849–1856.10.1002/(SICI)1097-4628(19970906)65:10<1849::AID-APP1>3.0.CO;2-FSuche in Google Scholar
[23] Ohkoshi I, Abe H, Doi Y. Polymer 2000, 41, 5985–5992.10.1016/S0032-3861(99)00781-8Suche in Google Scholar
[24] Jiang C. Filippi S, Magagnini P. Polymer 2003, 44, 2411–2422.10.1016/S0032-3861(03)00133-2Suche in Google Scholar
[25] Jakubowicz I. Polym. Degrad. Stab. 2003, 80, 39–43.10.1016/S0141-3910(02)00380-4Suche in Google Scholar
[26] Albertsson AC, Barenstedt C, Karlsson S. J. Environ. Polym. Degrad. 1993, 1, 241–245.10.1007/BF01458290Suche in Google Scholar
[27] Arutchelvi J, Sudhakar M, Arkatkar A, Doble M, Bhaduri S, Uppara PV. Indian J. Biotechnol. 2008, 7, 9–22.10.3923/jas.2009.3151.3155Suche in Google Scholar
[28] Montagna LS, da Camargo Forte MM, Santana RMC. J. Mater. Sci. Eng. A 2013, 3, 123–131.10.1002/app.41054Suche in Google Scholar
[29] Ploypetchara N, Suppakul P, Atong D, Pechyen C. Energy Procedia. 2014, 56, 201–210.10.1016/j.egypro.2014.07.150Suche in Google Scholar
[30] Yoo TW, Yoon HG, Choi SJ, Kim MS, Kim YH, Kim WN. Macromol. Res. 2010, 18, 583–588.10.1007/s13233-010-0613-ySuche in Google Scholar
[31] Gahleitner M. Prog. Polym. Sci. 2001, 26, 895–944.10.1016/S0079-6700(01)00011-9Suche in Google Scholar
[32] ASTM, D. 882: Standard Test Method for Tensile Properties of Thin Plastic Sheeting (1991).Suche in Google Scholar
[33] Anjum N, Gupta B, Riquet AM. J. Appl. Polym. Sci. 2006, 101, 772–778.10.1002/app.23999Suche in Google Scholar
[34] Maji S, Chattopadhyay P, Khastgir D, Chattopadhyay S. J. Polym. Res. 2010, 17, 325–334.10.1007/s10965-009-9319-2Suche in Google Scholar
[35] ASTM, D. 5338: Standard Test Method for Determining Aerobic Biodegradation of Plastic Materials under Controlled Composting Conditions, Incorporating Thermophilic Temperatures (2011).Suche in Google Scholar
[36] Kim YF, Choi CN, Kim YD, Lee KY, Lee MS. Fibers Polym. 2004, 5, 270–274.10.1007/BF02875524Suche in Google Scholar
[37] Rosa D, Grillo D, Bardi M, Calil M, Guedes C, Ramires E, Frollini E. Polym. Test. 2009, 28, 836–842.10.1016/j.polymertesting.2009.07.006Suche in Google Scholar
[38] El‐Arnaouty M, Abdel Ghaffar A, El Shafey H. J. Appl. Polym. Sci. 2008, 107, 744–754.10.1002/app.27099Suche in Google Scholar
©2018 Walter de Gruyter GmbH, Berlin/Boston
Artikel in diesem Heft
- Frontmatter
- Material properties
- Influence of particle size of isotactic polypropylene (iPP) on barrier property against agglomeration of homogenized microcrystalline cellulose (HMCC) in iPP/HMCC composites
- An investigation of the impact of an amino-ended hyperbranched polymer as a new type of modifier on the compatibility of PLA/PBAT blends
- Study on the adhesive properties of reactive liquid rubber toughened epoxy-clay hybrid nanocomposites
- Morphology, rheology and biodegradation of oxo-degradable polypropylene/polylactide blends
- Long term hydrothermal effect on the mechanical and thermo-mechanical properties of carbon nanofiber doped epoxy composites
- Long term accelerated aging investigation of an epoxy/silica nanocomposite for high voltage insulation
- Mechanical and morphological properties of modified halloysite nanotube filled ethylene-vinyl acetate copolymer nanocomposites
- Evaluation of polypropylene hybrid composites containing glass fiber and basalt powder
- Preparation and assembly
- Ibuprofen loaded nano-ethanolic liposomes carbopol gel system: in vitro characterization and anti-inflammatory efficacy assessment in Wistar rats
- Preparation of oriented bacterial cellulose nanofibers by flowing medium-assisted biosynthesis and influence of flowing velocity
- Engineering and processing
- Thin-wall injection molding of high-density polyethylene for infrared radiation system lenses
- Replication of micro-structured injection molds using physical vapor deposition coating and dynamic laser mold tempering
Artikel in diesem Heft
- Frontmatter
- Material properties
- Influence of particle size of isotactic polypropylene (iPP) on barrier property against agglomeration of homogenized microcrystalline cellulose (HMCC) in iPP/HMCC composites
- An investigation of the impact of an amino-ended hyperbranched polymer as a new type of modifier on the compatibility of PLA/PBAT blends
- Study on the adhesive properties of reactive liquid rubber toughened epoxy-clay hybrid nanocomposites
- Morphology, rheology and biodegradation of oxo-degradable polypropylene/polylactide blends
- Long term hydrothermal effect on the mechanical and thermo-mechanical properties of carbon nanofiber doped epoxy composites
- Long term accelerated aging investigation of an epoxy/silica nanocomposite for high voltage insulation
- Mechanical and morphological properties of modified halloysite nanotube filled ethylene-vinyl acetate copolymer nanocomposites
- Evaluation of polypropylene hybrid composites containing glass fiber and basalt powder
- Preparation and assembly
- Ibuprofen loaded nano-ethanolic liposomes carbopol gel system: in vitro characterization and anti-inflammatory efficacy assessment in Wistar rats
- Preparation of oriented bacterial cellulose nanofibers by flowing medium-assisted biosynthesis and influence of flowing velocity
- Engineering and processing
- Thin-wall injection molding of high-density polyethylene for infrared radiation system lenses
- Replication of micro-structured injection molds using physical vapor deposition coating and dynamic laser mold tempering