THERMAL OXIDATION KINETICS OF GRAPHENE-MICRO POWDERS IN OXYGEN FLOW

被引:0
|
作者
Garbuz, V. V. [1 ]
Petrova, V. A. [1 ]
Silinskaya, T. A. [1 ]
Kuzmenko, L. N. [1 ]
Terentyeva, T. M. [1 ]
机构
[1] Natl Acad Sci Ukraine, Frantsevich Inst Problems Mat Sci, Kiev, Ukraine
关键词
kinetic characteristics; oxidation; powders; microsized graphene; oxidation rate; activation energy; CARBON NANOTUBES;
D O I
10.1007/s11106-021-00239-9
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The oxidizing properties of graphene-micro powders in a purified oxygen flow were measured (v(O2) = 5.21.10(-4) mole . sec(-1) = const). The graphene powders were certified by the manufacturer (Center for Advanced 2D Materials, Innovation Development Laboratories, National University of Singapore). The following methods were used to test the powders: fractionated sequential oxidation over time at set temperature maxima of the CO(2)release rate and gradual heating, like that provided by DTA, at a rate of similar to 20 K/min. The amount of extracted carbon as CO2 was recorded every minute. The repeated sequence of fractionated temperature oxidation of parallel graphene samples determined the characteristic decomposition (oxidation) of three fractions at temperatures of 953, 1003, and 1043 +/- 10 K The oxidation results showed that the graphene powders were satisfactorily homogeneous, and their oxidation proceeded in the same way as in stacked, conical, and tubular carbon nanofibers at 923, 973, and 1013 +/- 10 K Three similar morphological components of graphene microparticles were visually identified in scanning electron microscopy images as planar, conical, and tubular. The average sizes of graphene microparticles were three orders of magnitude greater than the average diameters of the same fibrous nanoforms. The oxidation mechanism for carbon nanoforms and microforms in air has two states. The first stage involves peripheral oxidation of graphene particles (wait state): absorption of oxygen molecules by the surface of 2D graphene (>= 234 K), migration to the edge (perimeter) carbon atoms, recombination of oxygen molecules with perimeter carbon, and saturation of broken carbon bonds with bridged oxygen (2) bonds. The second stage (thermokinetic state) includes CO cleavage in heating and oxidation of CO to CO2 (oxidation, decay, combustion). The wait state is maintained by the thermokinetic process. The sizes of microparticles and the specific concentration of edge perimeter pairs of carbon and oxygen atoms on the periphery of graphene platelets influence the oxidation rate and oxidation temperature of powder fractions. The shift of oxidation temperatures for morphological graphene forms in comparison with fibrous nanoforms is +(30-50 K) on average. The procedure for purification of graphene powders promotes the transition of the most active planar particles into coiled forms. The kinetic temperature dependence for the oxidation of purified graphene represents a stepped S-shaped curve with saturation. The initial rates of carbon oxidation, v(oxC) = 4.57 x x 10(-8) mole . sec(-1), were recorded at 823 K In entry into the exponential range of measurements (873-983 K), the oxidation reaction rates v(oxC) of the graphene micropowder increase from 9.99 x x 10(-8) to 1.5 . 10(-6) mole . sec(-1) and the oxidation reaction rate constants k(oxC) from 1.91 . 10(-4) to 1.51 . 10(-3). The activation characteristics are E-a.oxC = 168 +/- 110 kJ . mole(-1) and frequency characteristics are A(0) = 6.06 . 105 to 7.40 . 10(6) sec(-1). The oxidation rate varied from 1.92 . 10(-6) to 1.06 . 10(-6) mole . sec(-1) after the inflection point at 983 K and up to 1073 K and from 8.89 . 10(-7) to 3. 30 10(-8) mole sec(-1) at 1093 K Subsequently, up to 1123 K, the carbon oxidation rate became zero when the sample burned completely. The known theoretically calculated activation energy of graphite oxidation is 172 kJ . mole(-1). The experimental results are within the theoretical values. Preliminary measurements for multiwalled nanotubes and intragranular inclusions of graphite and free nanosized carbon (onions, graphite platelets, conical fibers, and tubes) of commercial B15-xCx boron carbide powders are close to the above data.
引用
收藏
页码:291 / 297
页数:7
相关论文
共 50 条
  • [31] Oxygen Intercalation under Graphene on Ir(111): Energetics, Kinetics, and the Role of Graphene Edges
    Granas, Elin
    Knudsen, Jan
    Schroeder, Ulrike A.
    Gerber, Timm
    Busse, Carsten
    Arman, Mohammad A.
    Schulte, Karina
    Andersen, Jesper N.
    Michely, Thomas
    ACS NANO, 2012, 6 (11) : 9951 - 9963
  • [32] Oxidation pathway and kinetics of titania slag powders during cooling process in air
    He, Wen-chao
    Lu, Xue-wei
    Ding, Cheng-yi
    Yan, Zhi-ming
    INTERNATIONAL JOURNAL OF MINERALS METALLURGY AND MATERIALS, 2021, 28 (06) : 981 - 990
  • [33] Oxidation pathway and kinetics of titania slag powders during cooling process in air
    Wen-chao He
    Xue-wei Lü
    Cheng-yi Ding
    Zhi-ming Yan
    International Journal of Minerals, Metallurgy and Materials, 2021, 28 : 981 - 990
  • [34] Ultrathin CuO nanowires grown by thermal oxidation of copper powders in air
    Yang, Qing
    Guo, Zhiang
    Zhou, Xiaohong
    Zou, Juntao
    Liang, Shuhua
    MATERIALS LETTERS, 2015, 153 : 128 - 131
  • [35] Optimizing the micro/mesoporous structure of hierarchical graphene aerogel for CO2 capture by controlling the oxygen functional groups of graphene oxide
    Safaei, Elahe
    Talebi, Zahra
    Ghafarinia, Vahid
    JOURNAL OF THE TAIWAN INSTITUTE OF CHEMICAL ENGINEERS, 2025, 166
  • [36] Oxidation kinetics of refractory carbides at low oxygen partial pressures
    Gozzi, D
    Montozzi, M
    Cignini, PL
    SOLID STATE IONICS, 1999, 123 (1-4) : 11 - 18
  • [37] Oxidation kinetics of graphite nanoparticles with copper oxide as oxygen carrier
    Samuel Stuhlman
    Kamal Kumar
    Journal of Thermal Analysis and Calorimetry, 2022, 147 : 4165 - 4175
  • [38] The Kinetics of Radiation-Induced Oxidation of Polymers with Dissolved Oxygen
    A. A. Koptelov
    S. V. Karyazov
    High Energy Chemistry, 2002, 36 : 126 - 128
  • [39] Oxidation kinetics of graphite nanoparticles with copper oxide as oxygen carrier
    Stuhlman, Samuel
    Kumar, Kamal
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2022, 147 (06) : 4165 - 4175
  • [40] Oxidation kinetics of LaB6 in oxygen rich conditions
    Wen, CH
    Wu, TM
    Wei, WCJ
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2004, 24 (10-11) : 3235 - 3243