CRITICAL THICKNESS OF SINGLE-CRYSTAL FCC IRON ON DIAMOND

被引:6
|
作者
HOFF, HA [1 ]
WAYTENA, GL [1 ]
GLESENER, JW [1 ]
HARRIS, VG [1 ]
PAPPAS, DP [1 ]
机构
[1] VIRGINIA COMMONWEALTH UNIV,RICHMOND,VA 23284
关键词
COPPER; DIAMOND; EXTENDED X-RAY ABSORPTION FINE STRUCTURE (EXAFS); IRON; LOW INDEX SINGLE CRYSTAL SURFACES; REFLECTION HIGH-ENERGY ELECTRON DIFFRACTION (RHEED); SURFACE STRUCTURE; SURFACE TENSION;
D O I
10.1016/0039-6028(94)00787-X
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
The growth of (100) diamond/iron/copper multilayer structures has been examined by reflection high energy electron diffraction, extended X-ray absorption fine structure, and scanning electron microscopy in an effort to determine the thickness limit for metastable face-centered-cubic Fe on (100) diamond. Both copper films deposited on iron layers with thicknesses below 1.4 nm and the iron layers themselves were found to be face-centered cubic single crystal, while films grown on iron that was 2.0 nm and thicker and the iron itself were found to be polycrystalline. This critical thickness range of 1.4-2.0 nm compares well with the theoretically calculated value of 1.8 nm. This value was determined using the mechanical equilibrium theories (Matthews-Blakeslee and van der Merwe) with a lattice parameter for face-centered cubic iron that was derived by estimating the functional form of the linear thermal expansion coefficient and extrapolating the Poisson's ratio for austenitic stainless steel to the temperature of interest. The shear modulus, and intrinsic stacking fault energy for fcc Fe from similar to 1350 degrees C down to below room temperature have also been estimated. A more likely room temperature lattice parameter for fcc Fe than is usually assumed was estimated to be 0.3579 nm. The measured in-plane lattice parameter of strained fcc Fe on diamond was 3.54 +/- 0.1 Angstrom.
引用
收藏
页码:252 / 266
页数:15
相关论文
共 50 条
  • [21] Oriented graphite single-crystal inclusions in diamond
    Glinnemann, J
    Kusaka, K
    Harris, JW
    [J]. ZEITSCHRIFT FUR KRISTALLOGRAPHIE, 2003, 218 (11): : 733 - 739
  • [22] Dynamic actuation of single-crystal diamond nanobeams
    Sohn, Young-Ik
    Burek, Michael J.
    Kara, Vural
    Kearns, Ryan
    Loncar, Marko
    [J]. APPLIED PHYSICS LETTERS, 2015, 107 (24)
  • [23] Single-crystal diamond tools for laminated floors
    Prekwinkel, H
    [J]. INDUSTRIAL DIAMOND REVIEW, 1997, 57 (02): : 44 - 46
  • [24] Fabrication of Ultrathin Single-Crystal Diamond Membranes
    Fairchild, Barbara A.
    Olivero, Paolo
    Rubanov, Sergey
    Greentree, Andrew D.
    WaIdermann, Felix
    Taylor, Robert A.
    Walmsley, Ian
    Smith, Jason M.
    Huntington, Shane
    Gibson, Brant C.
    Jamieson, David N.
    Prawer, Steven
    [J]. ADVANCED MATERIALS, 2008, 20 (24) : 4793 - +
  • [25] SINGLE-CRYSTAL DIAMOND FILMS MADE ON COPPER
    BORMAN, S
    [J]. CHEMICAL & ENGINEERING NEWS, 1991, 69 (16) : 12 - 12
  • [26] Single-Crystal Diamond Nanobeam Waveguide Optomechanics
    Khanaliloo, Behzad
    Jayakumar, Harishankar
    Hryciw, Aaron C.
    Lake, David P.
    Kaviani, Hamidreza
    Barclay, Paul E.
    [J]. PHYSICAL REVIEW X, 2015, 5 (04):
  • [27] CVD-diamond single-crystal growth
    Schwarz, S
    Rottmair, C
    Hirmke, J
    Rosiwal, S
    Singer, RF
    [J]. JOURNAL OF CRYSTAL GROWTH, 2004, 271 (3-4) : 425 - 434
  • [28] Hydrogenating effect of single-crystal diamond surface
    [J]. Maki, Tetsuro, 1600, (31):
  • [29] Grinding technology for single-crystal diamond cutters
    Zhang, Jingmin
    [J]. Gongju Jishu/Tool Engineering, 1999, 33 (09): : 14 - 16
  • [30] Nanomechanical resonant structures in single-crystal diamond
    Burek, Michael J.
    Ramos, Daniel
    Patel, Parth
    Frank, Ian W.
    Loncar, Marko
    [J]. APPLIED PHYSICS LETTERS, 2013, 103 (13)