Maximum-entropy-method analysis of neutron diffraction data

被引:0
|
作者
机构
[1] Sakata, Makoto
[2] Uno, Tatsuya
[3] Takata, Masaki
[4] Howard, Christopher J.
来源
Sakata, Makoto | 1600年 / 26期
关键词
Crystallography - Mathematical models - Neutron diffraction;
D O I
暂无
中图分类号
学科分类号
摘要
The maximum-entropy method (MEM) is a very powerful method for deriving accurate electron-density distributions from X-ray diffraction data. The success of the method depends on the fact that the electron density is always positive. In order to analyse neutron diffraction data by the MEM, it is necessary to overcome the difficulty of negative scattering lengths for some atoms, such as Ti and Mn. In this work, three approaches to the MEM analysis of neutron powder diffraction data are examined. The data, from rutile (TiO2), have been collected previously and analysed by the Reitveld method [Howard, Sabine & Dickson (1991. Acta Cryst. B47, 462-468]. The first approach is to add an artificial large constant to the scattering-length density to maintain that density positive, then to subtract the same constant at the completion of the MEM analysis. This approach, however, proves unsuccessful since unrealistic density distributions result. In the second approach, the observed structure factors are amended so that the sign of the contribution from the Ti atoms is reversed. This method produces plausible maps of scattering-length density but suffers the disadvantage that the observations must be corrected by a model-dependent calculated factor before the MEM analysis can proceed. The third approach is based not on a scattering-length densities but on nuclear densities, which are always positive. Two equations are obtained, one for atoms with nuclei of positive scattering length and the other for atoms with negative scattering length. From these two equations, the nuclear densities of Ti and O atoms can be calculated separately. This procedure, like its X-ray counterpart, requires no structural model. MEM analysis of the rutile data by this approach has been successfully completed. As expected, and in contrast to the electron-density distribution obtained by the MEM [Sakata, Uno, Takata & Mori (1992), Acta Cryst. B48, 591-598], the map shows both Ti and O nuclear densities localized in very small regions around the atomic centres. It is concluded that the MEM applied to neutron powder diffraction data is superior to conventional Fourier transformation and, in spite of the longer computation time, is very well worthwhile.
引用
收藏
相关论文
共 50 条
  • [31] MAXIMUM-ENTROPY DATA-ANALYSIS
    VONDERLINDEN, W
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 1995, 60 (02): : 155 - 165
  • [32] APPLICATIONS OF THE MAXIMUM-ENTROPY METHOD TO POWDER DIFFRACTION AND ELECTRON CRYSTALLOGRAPHY
    GILMORE, CJ
    SHANKLAND, K
    BRICOGNE, G
    PROCEEDINGS OF THE ROYAL SOCIETY-MATHEMATICAL AND PHYSICAL SCIENCES, 1993, 442 (1914): : 97 - 111
  • [33] Neutron powder diffraction and difference maximum entropy method analysis of protium- and deuterium-dissolved BaSn0.5In0.5O2.75+α
    Nagasaki, Takanori
    Shiotani, Shinya
    Igawa, Naoki
    Yoshino, Masahito
    Iwasaki, Kouta
    Fukazawa, Hiroshi
    Utsumi, Wataru
    JOURNAL OF SOLID STATE CHEMISTRY, 2009, 182 (10) : 2632 - 2639
  • [34] Macromolecular diffraction data: Maximum entropy Patterson calculation used to estimate unobserved data
    Kadziola, Anders
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2015, 71 : S522 - S522
  • [35] Interpretation of the Mossbauer spectroscopy data by the maximum entropy method
    Dobrzynski, L.
    Holas, A.
    Satula, D.
    Szymanski, K.
    BAYESIAN INFERENCE AND MAXIMUM ENTROPY METHODS IN SCIENCE AND ENGINEERING, 2006, 872 : 511 - +
  • [36] Maximum entropy method for uncertainty decision analysis
    Zhang Ming
    Jin Ju-liang
    Zhang Li-bing
    Proceedings of 2006 Chinese Control and Decision Conference, 2006, : 1192 - 1194
  • [37] Application of the maximum entropy method in texture analysis
    Böhlke, T
    COMPUTATIONAL MATERIALS SCIENCE, 2005, 32 (3-4) : 276 - 283
  • [38] THE MAXIMUM-ENTROPY METHOD APPLIED TO INTENSITY DATA
    BRYAN, RK
    SCANNING MICROSCOPY, 1988, : 99 - 105
  • [39] The maximum entropy method in the analysis of the Mossbauer spectra
    Dobrzynski, L
    Szymanski, K
    Satula, D
    NUKLEONIKA, 2004, 49 : S89 - S93
  • [40] Visualizing Rattling in PrOs4Sb12 by Single Crystal Neutron Diffraction and Maximum-Entropy Analysis
    Kaneko, Koji
    Metoki, Naoto
    Kimura, Hiroyuki
    Noda, Yukio
    Matsuda, Tatsuma D.
    Kohgi, Masahumi
    JOURNAL OF THE PHYSICAL SOCIETY OF JAPAN, 2009, 78 (07)