Interfacial bonding of chromium-doped copper/diamond composites fabricated by powder metallurgy method

被引:2
|
作者
Jia, Shanquan [1 ]
Su, Yu [1 ]
Bolzoni, Leandro [1 ]
Yang, Fei [1 ]
机构
[1] Univ Waikato, Sch Engn, Waikato Ctr Adv Mat & Mfg, Hamilton 3240, New Zealand
来源
关键词
Copper/diamond composites; interface microstructure; interfacial bonding; hot forging; THERMAL-CONDUCTIVITY; DIAMOND PARTICLES; CU/DIAMOND COMPOSITES; CR; MICROSTRUCTURE; MATRIX; DESIGN; LAYER;
D O I
10.1142/S0217979220400500
中图分类号
O59 [应用物理学];
学科分类号
摘要
Copper/diamond composites can be used as heat-sink materials for high-power electronic devices due to their potential high thermal conductivity. However, it is challenging to obtain well-bonded interface between the copper matrix and the diamond particles. In this paper, we fabricated copper/diamond composites with x wt.% of chromium additive (x = 1; 3 and 7.4, and the corresponding composite was referred to as 1Cr-Cu/Dia, 3Cr-Cu/Dia and 7Cr-Cu/Dia, respectively) by hot forging of powder preforms. Results showed that only Cr3C2 interfacial layer formed between the copper matrix and the diamond particles for the 1Cr-Cu/Dia and 3Cr-Cu/Dia composites with a thickness of about 100 and 500 nm, respectively. A Cr/Cr3C2 dual layer interface formed in the 7Cr-Cu/Dia composite and its thickness was 1 mu m. The coverage of diamond surface by the interface layer increased with increasing the adding amount of chromium in the composites. The 3Cr-Cu/Dia composite achieved the highest relative density and bonding strength, comparing to 1Cr-Cu/Dia and 7Cr-Cu/Dia composites, attributed to the formation of an optimal interface structure.
引用
收藏
页数:8
相关论文
共 50 条
  • [21] High thermal conductivity Cu-3Cr/Diamond composites fabricated by powder metallurgy
    Zhang, Xiaoyan
    Lei, Qian
    [J]. MATERIALS LETTERS, 2024, 363
  • [22] Mechanical properties of titanium matrix composites fabricated via powder metallurgy method
    Yoganandam, K.
    Mohanavel, V
    Vairamuthu, J.
    Kannadhasan, V
    [J]. MATERIALS TODAY-PROCEEDINGS, 2020, 33 : 3243 - 3247
  • [23] Dry Sliding Wear Behavior of Sintered Copper-Diamond Composite Fabricated by Powder Metallurgy
    Zheng, RunGuo
    Zhan, ZaiJi
    Peng, XiaoTing
    Wang, WenKui
    [J]. MANUFACTURING ENGINEERING AND AUTOMATION I, PTS 1-3, 2011, 139-141 : 335 - 339
  • [24] The effect of copper granules on interfacial bonding and properties of the copper-graphite composite prepared by flake powder metallurgy
    Dixit, Manish
    Srivastava, Rajeev
    [J]. ADVANCED POWDER TECHNOLOGY, 2019, 30 (12) : 3067 - 3078
  • [25] Interfacial reaction of diamond/copper composites
    Wang, Pengpeng
    Guo, Hong
    Zhang, Ximin
    Yin, Fazhang
    Fan, Yeming
    Han, Yuanyuan
    [J]. Xiyou Jinshu/Chinese Journal of Rare Metals, 2015, 39 (04): : 308 - 313
  • [26] Enhancing Interfacial Bonding and Tensile Strength in CNT-Cu Composites by a Synergetic Method of Spraying Pyrolysis and Flake Powder Metallurgy
    Chen, Xiangyang
    Bao, Rui
    Yi, Jianhong
    Fang, Dong
    Tao, Jingmei
    Liu, Yichun
    [J]. MATERIALS, 2019, 12 (04)
  • [27] Titanium-Doped Copper-Diamond Composites Fabricated by Hot-Forging of Powder Mixtures or Cold-Pressed Powder Preforms
    Yang, F.
    Su, Y.
    Jia, S. Q.
    Zhao, Q. Y.
    Bolzoni, L.
    Li, T.
    Qian, M.
    [J]. JOM, 2019, 71 (12) : 4867 - 4871
  • [28] Titanium-Doped Copper-Diamond Composites Fabricated by Hot-Forging of Powder Mixtures or Cold-Pressed Powder Preforms
    F. Yang
    Y. Su
    S. Q. Jia
    Q. Y. Zhao
    L. Bolzoni
    T. Li
    M. Qian
    [J]. JOM, 2019, 71 : 4867 - 4871
  • [29] Improvement in physical and mechanical properties of aluminum/zircon composites fabricated by powder metallurgy method
    Abdizadeh, Hossein
    Ashuri, Maziar
    Moghadam, Pooyan Tavakoli
    Nouribahadory, Arshia
    Baharvandi, Hamid Reza
    [J]. MATERIALS & DESIGN, 2011, 32 (8-9): : 4417 - 4423
  • [30] A novel mixing method for powder metallurgy copper-carbon nanotube composites
    Özgün, Ö.
    Bulut, C.
    [J]. Materialwissenschaft und Werkstofftechnik, 2020, 51 (07): : 982 - 991