Simulations of X-Ray Scattering on Two-Dimensional, Graphitic and Turbostratic Carbon Structures

被引:31
|
作者
Dopita, Milan [1 ]
Rudolph, Martin [1 ]
Salomon, Anton [1 ]
Emmel, Marcus [2 ]
Aneziris, Christos G. [2 ]
Rafaja, David [1 ]
机构
[1] TU Bergakad Freiberg, Inst Mat Sci, D-09599 Freiberg, Germany
[2] TU Bergakad Freiberg, Inst Ceram Glass & Construct Mat, D-09599 Freiberg, Germany
关键词
DIFFRACTION;
D O I
10.1002/adem.201300157
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Simulations of scattered intensity distributions from two and three dimensional carbon structures of different shapes and sizes were done using the general Debye scattering equation. The influence of the lattice defects typical for the turbostratic structure, i.e., random fluctuations in the parallel layer spacings, random lateral translations of graphitic layers and mutual disorientations of individual parallel layers around the layers normal direction, on the resulting simulated scattered intensities were studied and discussed. The microstructure-induced changes in the line broadening, in the shape parameter in the Scherrer formula and in the lattice parameters determined from the positions of the X-ray diffraction lines are discussed in particular. The set of presented Scherrer parameters allows the calculation of the cluster sizes along and normal to the basal planes from the measured X-ray scattering. The reliability of the Warren-Bodenstein approach for scattering on turbostratic carbon structures was proven. Intensity distributions simulated using the Warren-Bodenstein approach were compared to those obtained using the general Debye scattering equation. It was confirmed that both approaches yield, for particular cluster size, similar results.
引用
收藏
页码:1280 / 1291
页数:12
相关论文
共 50 条
  • [31] ULTRAFAST TWO-DIMENSIONAL MATRIX X-RAY COLLIMATORS
    Heid, O.
    Huges, T.
    Kluge, T.
    Heller, J.
    RADIOTHERAPY AND ONCOLOGY, 2011, 99 : S374 - S374
  • [32] Recent Advances in Two-dimensional X-ray Diffraction
    He, Bob
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2011, 67 : C670 - C670
  • [33] Two-Dimensional X-Ray Beam Phase Sensing
    Berujon, Sebastien
    Ziegler, Eric
    Cerbino, Roberto
    Peverini, Luca
    PHYSICAL REVIEW LETTERS, 2012, 108 (15)
  • [34] Two-dimensional x-ray waveguides and point sources
    Pfeiffer, F
    David, C
    Burghammer, M
    Riekel, C
    Salditt, T
    SCIENCE, 2002, 297 (5579) : 230 - 234
  • [35] Stress measurement with two-dimensional X-ray diffraction
    He, BB
    THIRD INTERNATIONAL CONFERENCE ON EXPERIMENTAL MECHANICS, 2002, 4537 : 127 - 130
  • [36] Powder x-ray diffraction of two-dimensional materials
    Yang, D
    Frindt, RF
    JOURNAL OF APPLIED PHYSICS, 1996, 79 (05) : 2376 - 2385
  • [37] A two-dimensional waveguide beam for X-ray nanodiffraction
    Krywka, Christina
    Neubauer, Henrike
    Priebe, Marius
    Salditt, Tim
    Keckes, Jozef
    Buffet, Adeline
    Roth, Stephan Volkher
    Doehrmann, Ralph
    Mueller, Martin
    JOURNAL OF APPLIED CRYSTALLOGRAPHY, 2012, 45 : 85 - 92
  • [38] Study on X-ray Induced Two-Dimensional Thermal Shock Waves in Carbon/Phenolic
    Wang, Dengwang
    Gao, Yong
    Wang, Sheng
    Wang, Jie
    Li, Haipeng
    MATERIALS, 2021, 14 (13)
  • [39] Momentum-dependent light scattering in a two-dimensional Heisenberg antiferromagnet: Analysis of x-ray scattering data
    Donkov, A.
    Chubukov, A. V.
    PHYSICAL REVIEW B, 2007, 75 (02)
  • [40] Two-dimensional Kβ-Kα fluorescence spectrum by nonlinear resonant inelastic X-ray scattering
    Kenji Tamasaku
    Munetaka Taguchi
    Ichiro Inoue
    Taito Osaka
    Yuichi Inubushi
    Makina Yabashi
    Tetsuya Ishikawa
    Nature Communications, 14