High Temperature Graphitization of Diamond during Heat Treatment in Air and in a Vacuum

被引:1
|
作者
Shevchenko, V. Ya. [1 ]
Perevislov, S. N. [1 ]
Nozhkina, A. V. [2 ]
Oryshchenko, A. S. [1 ]
Arlashkin, I. E. [1 ]
机构
[1] Kurchatov Inst, Gorynin Cent Res Inst Struct Mat Prometey, Natl Res Ctr, St Petersburg 191015, Russia
[2] Res Inst Nat & Synthet Diamonds & Tool, Moscow 107996, Russia
基金
俄罗斯科学基金会;
关键词
diamond; faceted particles; graphitization; graphitization pits; diamond oxidation; thermal analysis; microstructure of diamond particles; HIGH-PRESSURE; TRANSFORMATION; GRAPHITE; CARBON; FILMS; RAMAN; SURFACES; DIAGRAM; PHASE;
D O I
10.1134/S1087659624600315
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
This paper studies the morphological and structural changes that occur during the graphitization of synthetic diamond powder (with highly faceted edges) and micropowder during heat treatment in air at temperatures up to 1000 degrees C and in a vacuum at temperatures up to 1600 degrees C. The most developed facets of the original diamond crystals are the octahedral {111} and cubic {100} faces. It is established that graphitization begins from the vertices and edges of crystals. {111} faces are more susceptible to graphitization than {100} faces. The morphological analysis of graphitized diamond AC160 in air helps us to study the kinetics of graphitization: the growth of dendritic graphite crystals and the formation of "graphitization pits" on the surface of diamond facets. It is shown for the first time that graphite of different shapes is formed on different diamond faces at different rates; thus, on the {111} faces graphite forms and grows in the form of triangles, and on the {100} faces, in the form of squares. At a high temperature, the volumetric graphitization of diamond particles is observed, accompanied by their destruction, mainly in the growth stages.
引用
收藏
页码:69 / 86
页数:18
相关论文
共 50 条
  • [21] Effect High Temperature Annealing on Graphitization of Anthracite
    Ma, Heng
    Liu, Yinxia
    ASIAN JOURNAL OF CHEMISTRY, 2014, 26 (09) : 2729 - 2732
  • [22] High-temperature oxidation behaviors of CVD diamond films
    Pu, Jui-Chen
    Wang, Sea-Fue
    Sung, James C.
    APPLIED SURFACE SCIENCE, 2009, 256 (03) : 668 - 673
  • [23] Precision, machining of diamond by utilization of graphitization phenomenon during cutting process
    Shabouk, S
    Nakamoto, T
    PROGRESS OF MACHINING TECHNOLOGY: WITH SOME TOPICS IN ADVANCED MANUFACTURING TECHNOLOGY, 2002, : 99 - 104
  • [24] Effect of Vacuum Heat Treatment on the High-Temperature Oxidation Resistance of NiCrAlY Coating
    Zheng, Jiahui
    Yang, Deming
    Gao, Yang
    COATINGS, 2020, 10 (11) : 1 - 12
  • [25] On the difference of graphitization behavior between vitrinite- and inertinite-rich anthracites during heat treatment
    Wang, Lu
    Qin, Rongfang
    Li, Yu
    Zhang, Hao
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2022, 44 (02) : 4991 - 5003
  • [26] High vacuum tribology of polycrystalline diamond coatings
    Mallik, Awadesh K.
    Shivashankar, S. A.
    Biswas, S. K.
    SADHANA-ACADEMY PROCEEDINGS IN ENGINEERING SCIENCES, 2009, 34 (05): : 811 - 821
  • [27] Diffusion coefficient of carbon in Fe-Ni alloy during synthesis of diamond under high temperature and high pressure
    Lin, I-Chiao
    Lin, Chung-Jung
    Tuan, Wei-Hsing
    CERAMICS INTERNATIONAL, 2013, 39 (08) : 8861 - 8864
  • [28] Changes in the properties of fibrous nanocarbons during high temperature heat treatment
    Kuvshinov, G. G.
    Chukanov, I. S.
    Krutsky, Y. L.
    Ochkov, V. V.
    Zaikouskii, V. I.
    Kuvshinov, D. G.
    CARBON, 2009, 47 (01) : 215 - 225
  • [29] Molecular dynamics simulation and experimental investigation of structural transformation and graphitization in diamond during friction
    Wang, Chengchuan
    Song, Xin
    Shen, Xiaotian
    Sun, Fanghong
    COMPUTATIONAL MATERIALS SCIENCE, 2020, 184 (184)
  • [30] Microstructure and graphitization behavior of diamond/SiC composites fabricated by vacuum vapor reactive infiltration
    Zhen-Liang Yang
    Li-Gen Wang
    Li-Min Wang
    Xin-Bo He
    Xuan-Hui Qu
    Rong-Jun Liu
    Hai-Feng Hu
    RareMetals, 2015, 34 (06) : 400 - 406