Biodegradable biopolymer-graphene nanocomposites

被引:63
|
作者
Rouf, Tahrima B. [1 ]
Kokini, Jozef L. [1 ]
机构
[1] Purdue Univ, Dept Food Sci, 745 Agr Mall Dr, W Lafayette, IN 47907 USA
关键词
ENHANCED MECHANICAL STRENGTH; ACID)/GRAPHENE OXIDE NANOCOMPOSITES; METHYLENE-BLUE ADSORPTION; POLY(LACTIC ACID); EXPANDED GRAPHITE; CALCIUM ALGINATE; DYE ADSORPTION; ELECTRICAL-CONDUCTIVITY; HYDROXYPROPYL CELLULOSE; BACTERIAL CELLULOSE;
D O I
10.1007/s10853-016-0238-4
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Graphene's invention has catalyzed many new material applications in different fields. It has been used in combination with different biopolymers to design nanocomposites with improved mechanical, thermal, electrical, as well as, gas-, and water vapor-barrier properties. This review focuses on the chemistry and synthesis of graphene oxide (GO) and sheds some light on the different ecological pathways available for graphene oxide synthesis and reduction. The major pathways for graphene incorporation into biopolymers include (1) solution intercalation, (2) melt intercalation, and (3) in situ polymerization. The fabrication, application, and mechanisms of bonding between biodegradable biopolymers, like poly (lactic acid), cellulose, starch, chitosan, alginates, polyamides, and other biodegradable materials, with different forms of graphene including graphene oxide (GO), reduced graphene oxide (RGO), graphene nanoplatelets (GNP), etc., are the focus of this review. The paper has been organized according to different methods of incorporating graphene derivatives into biopolymers, in order to highlight the mechanisms for chemical bonding-physical changes that biopolymers and graphene nanofillers undergo during the method of preparation and the impact of chemical changes on end use properties. The information has been assembled, so that new conclusions can be drawn from the available data. The mechanism of enhancement of functional properties is evaluated using techniques including fourier transform infrared spectroscopy (FTIR), X-ray diffraction (XRD), Raman, scanning electron microscopy (SEM), transmission electron microscopy (TEM), atomic force microscopy (AFM), and the synergy resulting from the use of different spectroscopic techniques is discussed beyond what the individual authors have been able to interpret often from a few techniques. Effectiveness of solvents used and reaction conditions have also been focused, in order to offer mechanistic understanding for the improvement of mechanical properties. The new observations and findings by comparing all relevant literature will help the reader to look at the whole spectrum of available methods and materials, in addition to focusing on the original biopolymer-graphene work.
引用
收藏
页码:9915 / 9945
页数:31
相关论文
共 50 条
  • [31] Unusual crystallization behavior of biodegradable poly(ethylene adipate) based nanocomposites induced by graphene oxide
    Jiang, Zinan
    Qiu, Zhaobin
    RSC ADVANCES, 2015, 5 (68) : 55486 - 55491
  • [32] Biodegradable chitosan-graphene oxide as an affective green filler for improving of properties in epoxy nanocomposites
    Sharif, Mehdi
    Tavakoli, Sahar
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2023, 233
  • [33] Enhanced Performance of Biodegradable Poly(butylene succinate)/Graphene Oxide Nanocomposites via in Situ Polymerization
    Wang, X. W.
    Zhang, C-A.
    Wang, P. L.
    Zhao, J.
    Zhang, W.
    Ji, J. H.
    Hua, K.
    Zhou, J.
    Yang, X. B.
    Li, X. P.
    LANGMUIR, 2012, 28 (18) : 7091 - 7095
  • [34] Improvement of Barrier Properties of Biodegradable Polybutylene Succinate/Graphene Nanoplatelets Nanocomposites Prepared by Melt Process
    Cosquer, Raphael
    Pruvost, Sebastien
    Gouanve, Fabrice
    MEMBRANES, 2021, 11 (02) : 1 - 25
  • [35] Poly(sodium 4-styrenesulfonate) modified graphene for reinforced biodegradable poly(ε-caprolactone) nanocomposites
    Wang, Ming
    Deng, Xiao-Ying
    Du, An-Ke
    Zhao, Tong-Hui
    Zeng, Jian-Bing
    RSC ADVANCES, 2015, 5 (89) : 73146 - 73154
  • [36] Biodegradable nanocomposites of amyloid fibrils and graphene with shape-memory and enzyme-sensing properties
    Li, Chaoxu
    Adamcik, Jozef
    Mezzenga, Raffaele
    NATURE NANOTECHNOLOGY, 2012, 7 (07) : 421 - 427
  • [37] Biodegradable Shape Memory Nanocomposites Based on PCL/PPC/Graphene: As a Proposal Material for Cardiovascular Stent
    Hashemi, Maryam
    Ghasemi, Ismaeil
    Omrani, Abdollah
    Rostami, Abbasali
    Duran-Valle, Carlos J.
    Qandalee, Mohammad
    JOURNAL OF POLYMERS AND THE ENVIRONMENT, 2025, : 2464 - 2479
  • [38] Crystallization Kinetics and Thermal Property of Biodegradable Poly(3-hydroxybutyrate)/Graphene Oxide Nanocomposites
    Jing, Xiangjin
    Qiu, Zhaobin
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2012, 12 (09) : 7314 - 7321
  • [39] Recent advances in biodegradable nanocomposites
    Pandey, JK
    Kumar, AP
    Misra, M
    Mohanty, AK
    Drzal, LT
    Singh, RP
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2005, 5 (04) : 497 - 526
  • [40] Nanocomposites Based on Biodegradable Polymers
    Armentano, Ilaria
    Puglia, Debora
    Luzi, Francesca
    Arciola, Carla Renata
    Morena, Francesco
    Martino, Sabata
    Torre, Luigi
    MATERIALS, 2018, 11 (05)