Cellulose-Reinforced Polylactic Acid Composites for Three-Dimensional Printing Using Polyethylene Glycol as an Additive: A Comprehensive Review

被引:7
作者
Benini, Kelly Cristina Coelho de Carvalho [1 ]
de Bomfim, Anne Shayene Campos [1 ]
Voorwald, Herman Jacobus Cornelis [1 ]
机构
[1] UNESP Sao Paulo State Univ, Dept Mat & Technol, Fatigue & Aeronaut Mat Res Grp, BR-12516410 Guaratingueta, SP, Brazil
关键词
polylactic acid; polyethylene glycol; cellulose; 3D printing; POLY(ETHYLENE GLYCOL); MECHANICAL-PROPERTIES; PHYSICOCHEMICAL PROPERTIES; NANOFIBRILLATED CELLULOSE; ANNEALING TREATMENT; MOLECULAR-WEIGHT; NANOCOMPOSITES; NANOCRYSTALS; NANOFIBERS; FILAMENTS;
D O I
10.3390/polym15193960
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Growing concerns about environmental issues and global warming have garnered increased attention in recent decades. Consequently, the use of materials sourced from renewable and biodegradable origins, produced sustainably, has piqued the interest of scientific researchers. Biodegradable and naturally derived polymers, such as cellulose and polylactic acid (PLA), have consistently been the focus of scientific investigation. The objective is to develop novel materials that could potentially replace conventional petroleum-based polymers, offering specific properties tailored for diverse applications while upholding principles of sustainability and technology as well as economic viability. Against this backdrop, the aim of this review is to provide a comprehensive overview of recent advancements in research concerning the use of polylactic acid (PLA) and the incorporation of cellulose as a reinforcing agent within this polymeric matrix, alongside the application of 3D printing technology. Additionally, a pivotal additive in the combination of PLA and cellulose, polyethylene glycol (PEG), is explored. A systematic review of the existing literature related to the combination of these materials (PLA, cellulose, and PEG) and 3D printing was conducted using the Web of Science and Scopus databases. The outcomes of this search are presented through a comparative analysis of diverse studies, encompassing aspects such as the scale and cellulose amount added into the PLA matrix, modifications applied to cellulose surfaces, the incorporation of additives or compatibilizing agents, variations in molecular weight and in the quantity of PEG introduced into the PLA/cellulose (nano)composites, and the resulting impact of these variables on the properties of these materials.
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页数:33
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共 155 条
[21]   Fully biodegradable PLA composite with improved mechanical properties via 3D printing [J].
Chen, Ye ;
Lu, Tingting ;
Li, Luyao ;
Zhang, Huiying ;
Wang, Huaping ;
Ke, Fuyou .
MATERIALS LETTERS, 2023, 331
[22]   Plasticized Poly(lactic acid) with Low Molecular Weight Poly(ethylene glycol): Mechanical, Thermal, and Morphology Properties [J].
Chieng, Buong Woei ;
Ibrahim, Nor Azowa ;
Yunus, Wan Md Zin Wan ;
Hussein, Mohd Zobir .
JOURNAL OF APPLIED POLYMER SCIENCE, 2013, 130 (06) :4576-4580
[23]   Lignin-containing cellulose fibrils as reinforcement of plasticized PLA biocomposites produced by melt processing using PEG as a carrier [J].
Chihaoui, Belgacem ;
Tarres, Quim ;
Delgado-Aguilar, Marc ;
Mutje, Pere ;
Boufi, Sami .
INDUSTRIAL CROPS AND PRODUCTS, 2022, 175
[24]   Development of Bio-based Membranes for Building Envelope Applications from Poly(lactic acid) and Cellulose Microfibers [J].
Chomachayi, Masoud Dadras ;
Blanchet, Pierre ;
Hussain, Atif .
BIORESOURCES, 2022, 17 (04) :5707-5727
[25]   Nanocellulose-reinforced, multilayered poly(vinyl alcohol)-based hydrophobic composites as an alternative sealing film [J].
Chou, Chun-Tu ;
Shi, Shih-Chen ;
Chen, Tao-Hsing ;
Chen, Chih-Kuang .
SCIENCE PROGRESS, 2023, 106 (01)
[26]   Sandwich-Structured, Hydrophobic, Nanocellulose-Reinforced Polyvinyl Alcohol as an Alternative Straw Material [J].
Chou, Chun-Tu ;
Shi, Shih-Chen ;
Chen, Chih-Kuang .
POLYMERS, 2021, 13 (24)
[27]   A simple and effective method to ameliorate the interfacial properties of cellulosic fibre based bio-composites using poly (ethylene glycol) based amphiphiles [J].
Church, Jeffrey S. ;
Voda, Andreea S. ;
Sutti, Alessandra ;
George, John ;
Fox, Bronwyn L. ;
Magniez, Kevin .
EUROPEAN POLYMER JOURNAL, 2015, 64 :70-78
[28]   Recycled poly(lactic acid)-based 3D printed sustainable biocomposites: a comparative study with injection molding [J].
Cisneros-Lopez, E. O. ;
Pal, A. K. ;
Rodriguez, A. U. ;
Wu, F. ;
Misra, M. ;
Mielewski, D. F. ;
Kiziltas, A. ;
Mohanty, A. K. .
MATERIALS TODAY SUSTAINABILITY, 2020, 7-8
[29]   Crystallization kinetics and morphology of small concentrations of cellulose nanofibrils (CNFs) and cellulose nanocrystals (CNCs) melt-compounded into poly(lactic acid) (PLA) with plasticizer [J].
Clarkson, Caitlyn M. ;
Azrak, Sami M. El Awad ;
Schueneman, Gregory T. ;
Snyder, James F. ;
Youngblood, Jeffrey P. .
POLYMER, 2020, 187
[30]   Melt Spinning of Cellulose Nanofibril/Polylactic Acid (CNF/PLA) Composite Fibers For High Stiffness [J].
Clarkson, Caitlyn M. ;
Azrak, Sami M. El Awad ;
Chowdhury, Reaz ;
Shuvo, Shoumya Nandy ;
Snyder, James ;
Schueneman, Gregory ;
Ortalan, Volkan ;
Youngblood, Jeffrey P. .
ACS APPLIED POLYMER MATERIALS, 2019, 1 (02) :160-168