Nanoscale tunable reduction of interfacial friction on nano-patterned wear-resistant bulk metallic glass

被引:5
|
作者
Guo, Dengji [1 ]
Chen, Xinchun [2 ]
Zhang, Chenhui [2 ]
Wu, Xiaoyu [1 ]
Liu, Zhiyuan [1 ]
Li, Kunluo [1 ]
Zhang, Jun [1 ]
Wang, Chenxue [1 ]
机构
[1] Shenzhen Univ, Coll Mechatron & Control Engn, Guangdong Prov Key Lab Micro Nano Optomechatron E, Shenzhen 518060, Peoples R China
[2] Tsinghua Univ, Dept Mech Engn, State Key Lab Tribol, Beijing 100084, Peoples R China
基金
中国国家自然科学基金;
关键词
Bulk metallic glass; Nano-groove patterns; AFM; Friction reduction; Anti-wear; FORCE MICROSCOPY; MICROELECTROMECHANICAL SYSTEMS; SUPERCOOLED LIQUID; AMORPHOUS-ALLOYS; SURFACES; OXIDE; MEMS; TRIBOLOGY; OXIDATION; SCALE;
D O I
10.1016/j.apsusc.2018.05.095
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Controllable friction and wear is desired for the structural durability and functional reliability in small-scale moving devices such as MEMS/NEMS. A critical need is to understand the fundamental mechanisms concerning interfacial friction evolution and modulation on the nano-structured surfaces, and to explore the possibility to reduce wear at the nanoscale. Here, we show a novel method to reduce friction by fabrication of nano-groove patterns on wear-resistant Zr-based bulk metallic glass of Zr52.5Cu17.9Ni14.6Al10Ti5. The tunable level of friction reduction is highly dependent on contact parameters, and the origins of a series of friction phenomena such as Amontonian behavior, friction anisotropy, logarithmic evolution and topography-induced instability are interpreted from the aspects of groove density, normal load, scan velocity, topographical direction and contact area. The exceptional anti-wear performance of glassy metal interface is attributed to the in-situ formation of a 5 nm-thick oxide layer with specific alloying components of ZrO2, CuO and Al2O3. The present findings provide key implications on the use of metallic glass as engineering materials for sustainable and efficient design of miniaturized systems.
引用
收藏
页码:297 / 308
页数:12
相关论文
共 27 条
  • [21] Wear Resistance of the La62Cu12Ni12Al14 Bulk Metallic Glass Under Dry Friction Conditions
    Jing Guo
    Soo-Hyun Joo
    Dong-Hai Pi
    Xiaohui Zhang
    Xiaorong Zhang
    Mohamed Abdelaal
    Yuepeng Song
    Hyoung Seop Kim
    Tribology Letters, 2017, 65
  • [22] Wear Resistance of the La62Cu12Ni12Al14 Bulk Metallic Glass Under Dry Friction Conditions
    Guo, Jing
    Joo, Soo-Hyun
    Pi, Dong-Hai
    Zhang, Xiaohui
    Zhang, Xiaorong
    Abdelaal, Mohamed
    Song, Yuepeng
    Kim, Hyoung Seop
    TRIBOLOGY LETTERS, 2017, 65 (02)
  • [23] Friction-reduction and wear-resistant behavior of graphite in gray cast iron sliding against Al2O3 ceramics under different conditions
    Si, S.H.
    Fang, L.
    Mocaxue Xuebao/Tribology, 2001, 21 (02): : 154 - 156
  • [24] Developing a new laser cladded FeCrMoCB metallic glass layer on nickel-free stainless-steel as a potential superior wear-resistant coating for joint replacement implants
    Ibrahim, Mahmoud Z.
    Sarhan, Ahmed A. D.
    Kuo, T. Y.
    Yusof, Farazila
    Hamdi, M.
    Lee, T. M.
    SURFACE & COATINGS TECHNOLOGY, 2020, 392
  • [25] Nanoscale amorphous "band-like" structure induced by friction stir processing in Zr55Cu30Al10Ni5 bulk metallic glass
    Kobata, J.
    Takigawa, Y.
    Chung, S. W.
    Tsuda, H.
    Kimura, H.
    Higashi, K.
    MATERIALS LETTERS, 2007, 61 (17) : 3771 - 3773
  • [26] Sliding friction and wear mechanisms of Cu36Zr48Ag8Al8 bulk metallic glass under different sliding conditions: dry sliding, deionized water, and NaOH corrosive solutions
    Jiang, Xiaofang
    Song, Junjie
    Fan, Hengzhong
    Su, Yunfeng
    Zhang, Yongsheng
    Hu, Litian
    TRIBOLOGY INTERNATIONAL, 2020, 146
  • [27] Sliding friction and wear mechanisms of Cu36Zr48Ag8Al8 bulk metallic glass under different sliding conditions: dry sliding, deionized water, and NaOH corrosive solutions
    Jiang, Xiaofang
    Song, Junjie
    Fan, Hengzhong
    Su, Yunfeng
    Zhang, Yongsheng
    Hu, Litian
    Song, Junjie (songjunjie@licp.cas.cn), 1600, Elsevier Ltd (146):