Polylactic acid (PLA): Properties, synthesis, and biomedical applications - A review of the literature

被引:7
|
作者
Khouri, Nadia G. [1 ]
Bahu, Juliana O. [1 ]
Blanco-Llamero, Cristina [2 ,3 ]
Severino, Patricia [4 ]
Concha, Viktor O. C. [5 ]
Souto, Eliana B. [2 ]
机构
[1] Univ Estadual Campinas UNICAMP, Sch Chem Engn, INCT BIOFABRIS, Albert Einstein Ave,Cidade Univ Zeferino Vaz 500, BR-13083852 Campinas, SP, Brazil
[2] Univ Porto, Fac Pharm, Lab Pharmaceut Technol, Rua Jorge Viterbo Ferreira 228, P-4050313 Porto, Portugal
[3] Univ Francisco Vitoria UFV, Fac Ciencias Salud, Ctra PozueloMajadahonda Km 1,800,Pozuelo Alarcon, Madrid 28223, Spain
[4] Univ Tiradentes, Inst Res & Technol, Ave Murilo Dantas 300, BR-49032490 Aracaju, SE, Brazil
[5] Fed Univ Sao Paulo UNIFESP, Ctr Environm Chem & Pharmaceut Sci, Sch Chem Engn, BR-09913030 Diadema, Brazil
关键词
Biopolymer; Composite materials; Synthesis; Mechanical properties; Biomedical applications; CORONARY STENTS; NANOCOMPOSITES; DEGRADATION; SCAFFOLDS; POLYMERS; DELIVERY; DEVICES; BLENDS;
D O I
10.1016/j.molstruc.2024.138243
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
This comprehensive review is an in-depth analysis of polylactic acid (PLA), an increasingly important biopolymer due to its wide-ranging applications and sustainability features. PLA's physical, thermal, and mechanical properties are closely linked to its molecular distribution, mass, and stereochemistry, allowing it to exist in amorphous or semicrystalline states. The controlled polymerization of different optical monomers enables the creation of different types of PLA with distinct properties. To address PLA's inherent hardness limitation, researchers are exploring blends with stereo complexes like PLLA/PDLA, leading to improved mechanical and thermal properties. PLA's moldability supports its versatility in various forms, from nanoparticles to resorbable sutures. Focusing on composite materials, the review discusses the use of PLA in reinforcing synthetic and natural fibers to obtain composites, and in the production of micro- and nanoparticles. The incorporation of fibers, such as wood, cotton, and carbon-based synthetics, significantly influences the composite's mechanical properties. Additionally, the rise of nanoscale fillers, including clays and nanoparticles, has offered cost-effective solutions for enhanced material performance. Synthesis methods for PLA encompass direct polycondensation and ring opening, with the latter preferred due to improved control of polymerization. The degradation behavior of the polymer which, together with its biocompatible properties and eco-friendly production methods, makes PLA a potential material for biological applications. The innovative features, obtained by the bibliometric map generated with the VosViewer software from Scopus database, highlights the role of PLA in the biomedical field, in particular for tissue engineering by improving healing rates and, as well as for implants and prosthetics.
引用
下载
收藏
页数:16
相关论文
共 50 条
  • [11] Optimisation of the additive manufacturing parameters of polylactic acid (PLA) cellular structures for biomedical applications
    Myers, David
    Abdel-Wahab, Adel
    Hafeez, Farrukh
    Kovacev, Nikolina
    Essa, Khamis
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2022, 136
  • [12] Synthesis and characterization of hematite (α-Fe2O3) reinforced polylactic acid (PLA) nanocomposites for biomedical applications
    Ikram, Hamid
    Al Rashid, Ans
    Koc, Muammer
    COMPOSITES PART C: OPEN ACCESS, 2022, 9
  • [13] Properties and medical applications of polylactic acid: A review
    Hamad, K.
    Kaseem, M.
    Yang, H. W.
    Deri, F.
    Ko, Y. G.
    EXPRESS POLYMER LETTERS, 2015, 9 (05): : 435 - 455
  • [14] Microarchitected 3D printed polylactic acid (PLA) nanocomposite scaffolds for biomedical applications
    Alam, Fahad
    Shukla, Vishnu Raj
    Varadarajan, K. M.
    Kumar, S.
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2020, 103
  • [15] Biocompatibility Assessment of Polylactic Acid (PLA) and Nanobioglass (n-BG) Nanocomposites for Biomedical Applications
    Ivan Castro, Jorge
    Valencia Llano, Carlos Humberto
    Lopez Tenorio, Diego
    Saavedra, Marcela
    Zapata, Paula
    Paola Navia-Porras, Diana
    Delgado-Ospina, Johannes
    Chaur, Manuel N.
    Mina Hernandez, Jose Herminsul
    David Grande-Tovar, Carlos
    MOLECULES, 2022, 27 (11):
  • [16] CLASSIC AND MODERN APPLICATIONS OF POLYLACTIC ACID (PLA) WITHIN TISSUE ENGINEERING AND OTHER BIOMEDICAL DOMAINS
    Dreanca, Alexandra
    Neagu, Amalia Marina
    Potarniche, A. V.
    Blidaru, M.
    Sarosi, Codruta
    Moldovan, Marioara
    Marcus, I.
    REVISTA ROMANA DE MEDICINA VETERINARA, 2018, 28 (02): : 45 - 50
  • [17] Preliminary Investigations of Polylactic Acid (PLA) Properties
    Subramaniam, S. R.
    Samykano, M.
    Selvamani, S. K.
    Ngui, W. K.
    Kadirgama, K.
    Sudhakar, K.
    Idris, M. S.
    PROCEEDINGS OF THE 3RD INTERNATIONAL CONFERENCE ON AUTOMOTIVE INNOVATION GREEN ENERGY VEHICLE (AIGEV 2018), 2019, 2059
  • [18] Thermomechanical Properties of Polylactic Acid-Graphene Composites: A State-of-the-Art Review for Biomedical Applications
    Bayer, Ilker S.
    MATERIALS, 2017, 10 (07):
  • [19] A comprehensive review on polylactic acid (PLA)-Synthesis, processing and application in food packaging
    Swetha, T. Angelin
    Bora, Abhispa
    Mohanrasu, K.
    Balaji, P.
    Raja, Rathinam
    Ponnuchamy, Kumar
    Muthusamy, Govarthanan
    Arun, A.
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2023, 234
  • [20] Poly lactic acid (PLA) polymers: from properties to biomedical applications
    Ebrahimi, Farnoosh
    Dana, Hossein Ramezani
    INTERNATIONAL JOURNAL OF POLYMERIC MATERIALS AND POLYMERIC BIOMATERIALS, 2022, 71 (15) : 1117 - 1130