Toward Large-Scale Production of Oxidized Graphene

被引:66
|
作者
Tene, Talia [1 ]
Tubon Usca, Gabriela [2 ,3 ]
Guevara, Marco [2 ]
Molina, Raul [4 ]
Veltri, Francesco [3 ,5 ]
Arias, Melvin [3 ,6 ]
Caputi, Lorenzo S. [3 ,5 ]
Vacacela Gomez, Cristian [3 ,7 ]
机构
[1] Univ Tecn Particular Loja, Dept Chem & Exact Sci, EC-110160 Loja, Ecuador
[2] Escuela Super Politecn Chimborazo, Fac Sci & Mech Engn, EC-060155 Riobamba, Ecuador
[3] Univ Calabria, UNICARIBE Res Ctr, I-87036 Arcavacata Di Rende, CS, Italy
[4] GraphenTech NL, Olympiaweg 28A, NL-3077 AL Rotterdam, Netherlands
[5] Univ Calabria, Dept Phys, Surface Nanosci Grp, Via P Bucci,Cubo 33C, I-87036 Arcavacata Di Rende, Italy
[6] Inst Tecnol Santo Domingo, Area Ciencias Basicas & Ambientales, Av Los Proceres, Santo Domingo 10602, Dominican Rep
[7] Yachay Tech Univ, CompNano, Sch Phys Sci & Nanotechnol, EC-100119 Urcuqui, Ecuador
关键词
graphene; oxidized graphene; citric acid; large-scale production; FEW-LAYER GRAPHENE; ELECTRONIC-PROPERTIES; FUNCTIONALIZED GRAPHENE; OXIDE; EXFOLIATION; FILMS; WATER; COMPOSITES; MONOLAYER;
D O I
10.3390/nano10020279
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The oxidative exfoliation of graphite is a promising approach to the large-scale production of graphene. Conventional oxidation of graphite essentially facilitates the exfoliation process; however, the oxidation procedure releases toxic gases and requires extensive, time-consuming steps of washing and reduction to convert exfoliated graphene oxide (GO) into reduced graphene oxide (rGO). Although toxic gases can be controlled by modifying chemical reactions, filtration, dialysis, and extensive sonication are unfavorable for large-scale production. Here, we report a complete, scalable, and green synthesis of GO, without NaNO3, followed by reduction with citric acid (CA). This approach eliminates the generation of toxic gases, simplifies the washing steps, and reduces the time required to prepare rGO. To validate the proposed method, we present spectroscopical and morphological studies, using energy-dispersive X-ray spectroscopy (EDS), UV-visible spectroscopy, infrared spectroscopy, Raman spectroscopy, scanning electron microscopy (SEM), and transmission electron microscopy (TEM). Thermal gravimetric analysis (TGA) is used to analyze the thermal properties of GO and rGO. This eco-friendly method proposes a complete guideline protocol toward large-scale production of oxidized graphene, with potential applications in supercapacitors, fuel cells, composites, batteries, and biosensors.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] LARGE-SCALE PRODUCTION OF VIRUS
    NICKLIN, PM
    HOUSE, W
    BIOTECHNOLOGY AND BIOENGINEERING, 1976, 18 (05) : 723 - 727
  • [22] Large-scale hydrogen production
    Rostrup-Nielsen, JR
    Rostrup-Nielsen, T
    CATTECH, 2002, 6 (04) : 150 - 159
  • [23] Large-scale production of azotobacter
    Lee, SB
    Burris, RH
    INDUSTRIAL AND ENGINEERING CHEMISTRY, 1943, 35 : 354 - 357
  • [24] LARGE-SCALE PRODUCTION OF OXYGEN
    NEILL, J
    CHEMISTRY & INDUSTRY, 1949, (43) : 745 - 745
  • [25] LARGE-SCALE PRODUCTION OF FRUCTOSE
    LAUER, K
    STARKE, 1980, 32 (01): : 11 - 13
  • [26] Progress in Large-Scale Production of Graphene. Part 1: Chemical Methods
    Li, Yuan
    Chopra, Nitin
    JOM, 2015, 67 (01) : 34 - 43
  • [27] Tuning of fluorine content in graphene: towards large-scale production of stoichiometric fluorographene
    Mazanek, Vlastimil
    Jankovsky, Ondrej
    Luxa, Jan
    Sedmidubsky, David
    Janousek, Zbynek
    Sembera, Filip
    Mikulics, Martin
    Sofer, Zdenek
    NANOSCALE, 2015, 7 (32) : 13646 - 13655
  • [28] Progress in Large-Scale Production of Graphene. Part 2: Vapor Methods
    Yuan Li
    Nitin Chopra
    JOM, 2015, 67 : 44 - 52
  • [29] Progress in Large-Scale Production of Graphene. Part 2: Vapor Methods
    Li, Yuan
    Chopra, Nitin
    JOM, 2015, 67 (01) : 44 - 52
  • [30] Progress in Large-Scale Production of Graphene. Part 1: Chemical Methods
    Yuan Li
    Nitin Chopra
    JOM, 2015, 67 : 34 - 43