Advances in efficient preparation of graphene by liquid-phase exfoliation

被引:0
|
作者
Li W. [1 ]
Liu Q. [1 ]
Yang Z. [1 ]
Gao Z. [1 ]
Wang J. [1 ]
Zhou M. [2 ]
Zhang J. [3 ]
机构
[1] School of Chemical Engineering, Zhengzhou University, Henan, Zhengzhou
[2] Department of Geotechnical Engineering College of Civil Engineering, Tongji University, Shanghai
[3] School of Chemical Engineering, Tianjin University, Tianjin
关键词
efficient preparation; graphene; high-shear; liquid-phase exfoliation; microchannel; two-dimensional nanomaterial;
D O I
10.16085/j.issn.1000-6613.2023-1595
中图分类号
学科分类号
摘要
Graphene, a two-dimensional nanomaterial with excellent physical and chemical properties, is widely used in batteries, catalysis, sensors, printing, biomedicine and other fields. However, the application and development of graphene and its derivatives face great challenges in achieving low-cost, high-quality and large-scale production. Herein, the progress of large-scale preparation of graphene by liquid-phase exfoliation was reviewed. The focus was on exploring the principles of pretreatment methods for liquid-phase exfoliation, including electrochemical intercalation, solvent intercalation, high-temperature expansion and microwave expansion, and their effects on the exfoliation effect of graphene. Subsequently, the advantages/disadvantages and selection principles of exfoliation solvents, such as water-based solvents, organic solvents and mixed solvents, were analyzed. The exfoliation principles and advantages/disadvantages of process intensification equipment, such as ultrasonic, high-shear and microchannel, were compared. Then, the post-processing method and separation effect of centrifugal separation on graphene were briefly described. Finally, the efficient production of graphene by liquid-phase exfoliation was being improved through multi-objective optimization techniques by integrating artificial intelligence. This included experimenting with residual-free functional intercalation agents and combining them with gentle and rapid expansion methods; exploring solvent systems with properties such as low toxicity, low boiling points and high dispersion characteristics; accurately regulating the liquid-phase exfoliation mechanism and engineering cascaded centrifugation equipment to achieve continuous, large-scale and cost-effective rapid production of graphene. © 2024 Chemical Industry Press Co., Ltd.. All rights reserved.
引用
收藏
页码:215 / 231
页数:16
相关论文
共 126 条
  • [1] NOVOSELOV K S, GEIM A K, MOROZOV S V, Et al., Electric field effect in atomically thin carbon films, Science, 306, 5696, pp. 666-669, (2004)
  • [2] LEE Changgu, WEI Xiaoding, KYSAR Jeffrey W, Et al., Measurement of the elastic properties and intrinsic strength of monolayer graphene, Science, 321, 5887, pp. 385-388, (2008)
  • [3] BALANDIN A A, GHOSH S, BAO Wenzhong, Et al., Superior thermal conductivity of single-layer graphene, Nano Letters, 8, 3, pp. 902-907, (2008)
  • [4] BOLOTIN K I, SIKES K J, JIANG Z, Et al., Ultrahigh electron mobility in suspended graphene, Solid State Communications, 146, 9, pp. 351-355, (2008)
  • [5] PUAH Perng Yang, YUSOFF Umul Hanim, LEE Ping Chin, Et al., Surface characterization, biocompatibility and osteogenic differentiation of drop-casted multilayer graphene oxide film towards human wharton’s jelly derived mesenchymal stem cells, Materials Technology, 35, 4, pp. 238-247, (2020)
  • [6] MALLICK Madhusmita, ARUNACHALAM N., Electrophoretic deposited graphene based functional coatings for biocompatibility improvement of Nitinol, Thin Solid Films, 692, (2019)
  • [7] HAN X, CHEN Y, ZHU H, Et al., Scalable, printable, surfactant-free graphene ink directly from graphite, Nanotechnology, 24, 20, (2013)
  • [8] YAN Yinglin, LIN Jiaming, CHEN Shiyu, Et al., Investigation on the electrochemical properties of antimony tin oxide nanoparticlemodified graphene aerogel as cathode matrix in lithium-sulfur battery, Journal of Nanoscience and Nanotechnology, 20, 11, pp. 7027-7033, (2020)
  • [9] ZHANG Lihui, XU Yuxing, LIU Zhenfa, Et al., Synthesis and electrochemical properties of Li<sub>4</sub>Ti<sub>5</sub>O<sub>12</sub>/graphene composite as an anode material for Li-ion batteries, Chemical Industry and Engineering Progress, 38, 2, pp. 949-955, (2019)
  • [10] LI Chuanchuan, ZHU Lin, QI Siyun, Et al., Ultrahigh-areal-capacity battery anodes enabled by free-standing vanadium Nitride@N-doped carbon/graphene architecture, ACS Applied Materials & Interfaces, 12, 44, pp. 49607-49616, (2020)