Green fabrication techniques for graphene and graphene nanocomposites—state-of-the-art and modern prospects

被引:0
|
作者
Kausar A. [1 ,2 ]
Ahmad I. [1 ,2 ]
机构
[1] NPU-NCP Joint International Research Center on Advanced Nanomaterials and Defects Engineering, Northwestern Polytechnical University, Xi’an
[2] UNESCO-UNISA Africa Chair in Nanosciences/Nanotechnology, iThemba LABS, Somerset West
关键词
drug delivery; energy; fabrication; graphene; Green; nanocomposite; packaging;
D O I
10.1080/14328917.2024.2326696
中图分类号
学科分类号
摘要
Graphene is a unique nanocarbon nanostructure which is commonly used to form the nanocomposites. Green strategies (chemical vapour deposition with green catalysts, mechanical exfoliation, sonication) and sustainable carbon sources (plant extracts and recycled polymers) have been applied to synthesise graphene and graphene derivatives. For the formation of graphene nanocomposites, green fabrication methods (sonication, solution route, electrostatic, in situ polymerisation, printing, hydrothermal, etc.) involving green matrices, nanofillers, solvents, and reagents, have also been investigated. Thus, this state-of-the-art overview highlights essential green methods for the formation of graphene and nanomaterials. The resulting green graphene nanocomposites have numerous superior structural and physical properties such as morphology, electrical conductivity, thermal conductivity, thermal stability, and mechanical stability. Subsequently, the green synthesised graphene and graphene nanocomposites have been explored for important high performance technical applications including the energy storage, packaging, antibacterial, bioimaging, and drug delivery applications. Future research on the development of advanced synthesis methods may overcome the design and performance challenges of the green graphene nanocomposites. © 2024 Informa UK Limited, trading as Taylor & Francis Group.
引用
收藏
页码:478 / 492
相关论文
共 50 条
  • [41] Antibacterial Activity of Polymer Nanocomposites Incorporating Graphene and Its Derivatives: A State of Art
    Diez-Pascual, Ana M.
    Luceno-Sanchez, Jose A.
    POLYMERS, 2021, 13 (13)
  • [42] State-of-the-Art Cranial Sonography: Part 1, Modern Techniques and Image Interpretation
    Lowe, Lisa H.
    Bailey, Zachary
    AMERICAN JOURNAL OF ROENTGENOLOGY, 2011, 196 (05) : 1028 - 1033
  • [43] Prospects of MXenes/graphene nanocomposites for advanced supercapacitor applications
    Das, Kinsuk
    Majumdar, Dipanwita
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2022, 905
  • [44] Circular and green economy: the state-of-the-art
    Santeramo, Fabio G.
    HELIYON, 2022, 8 (04)
  • [45] Holographic wavefront sensors: state-of-the-art and prospects
    Solovev, Maksim A.
    Venediktov, Vladimir Yu.
    HOLOGRAPHY: ADVANCES AND MODERN TRENDS IV, 2015, 9508
  • [46] Prospects for the Intellectualization of State-of-the-Art Aviation Systems
    Zheltov, S. Yu.
    Kos'yanchuk, V. V.
    HERALD OF THE RUSSIAN ACADEMY OF SCIENCES, 2018, 88 (01) : 28 - 36
  • [47] Texture Classification: State-of-the-art Methods and Prospects
    Liu L.
    Zhao L.-J.
    Guo C.-Y.
    Wang L.
    Tang J.
    Liu, Li (liuli_nudt@nudt.edu.cn), 2018, Science Press (44): : 584 - 607
  • [48] SPACE AND PROCESS HEATING - STATE-OF-THE-ART AND PROSPECTS
    KRUZHELNITSKY, VN
    GEOTHERMICS, 1985, 14 (2-3) : 165 - 173
  • [49] IGBT History, State-of-the-Art, and Future Prospects
    Iwamuro, Noriyuki
    Laska, Thomas
    IEEE TRANSACTIONS ON ELECTRON DEVICES, 2017, 64 (03) : 741 - 752
  • [50] Prospects for the Intellectualization of State-of-the-Art Aviation Systems
    S. Yu. Zheltov
    V. V. Kos’yanchuk
    Herald of the Russian Academy of Sciences, 2018, 88 : 28 - 36