OPTIMUM EXPERIMENTAL CONDITIONS FOR QUANTITATIVE SURFACE MICROANALYSIS BY REFLECTION ELECTRON ENERGY-LOSS SPECTROSCOPY

被引:0
作者
WANG, ZL [1 ]
BENTLEY, J [1 ]
机构
[1] UNIV TENNESSEE,DEPT MAT SCI & ENGN,KNOXVILLE,TN 37996
来源
MICROSCOPY MICROANALYSIS MICROSTRUCTURES | 1991年 / 2卷 / 2-3期
关键词
D O I
暂无
中图分类号
TH742 [显微镜];
学科分类号
摘要
Experimental conditions for obtaining high quality core-shell ionization edges in reflection electron energy-loss spectroscopy (REELS) are investigated. Under the (600) specular "mirror" reflection conditions and using the relative ionization cross-section measured from a MgO thin foil in the transmission geometry for collection semi-angle beta = 1.2 mrad, the chemical composition of MgO (100) surfaces is determined to be N(O)/N(Mg) = 1.5 +/- 0.15. This value is not significantly affected by varying the resonance diffraction conditions near the [001] zone axis, under which the spectra were acquired. An incorrect apparent composition will result if channeling effects along the [011] zone axis are not considered properly. Surface microanalysis is limited by the accuracy of the core-shell effective ionization cross-section (EICS), which depends not only on the property of a single atom but also on the dynamical elastic and inelastic scattering and channeling processes of electrons. An experimental method is outlined by which to measure the relative EICS from a thin foil specimen in the transmission case under the equivalent resonance conditions as in reflection geometry.
引用
收藏
页码:301 / 314
页数:14
相关论文
共 50 条
[31]   Kinematic analysis of a dispersion region probed in reflection electron energy-loss spectroscopy [J].
Inaoka, T .
SURFACE SCIENCE, 2001, 493 (1-3) :687-691
[32]   Quantitative microanalysis using electron energy-loss spectrometry .2. Compounds with heavier elements [J].
Hofer, F ;
Kothleitner, G .
MICROSCOPY MICROANALYSIS MICROSTRUCTURES, 1996, 7 (04) :265-277
[33]   Experimental and theoretical study of the detection limits in electron energy-loss spectroscopy [J].
Natusch, MKH ;
Humphreys, CJ ;
Menon, N ;
Krivanek, OL .
MICRON, 1999, 30 (02) :173-183
[34]   The impact of surface and retardation losses on valence electron energy-loss spectroscopy [J].
Erni, Rolf ;
Browning, Nigel D. .
ULTRAMICROSCOPY, 2008, 108 (02) :84-99
[35]   Characterizing Localized Surface Plasmons Using Electron Energy-Loss Spectroscopy [J].
Cherqui, Charles ;
Thakkar, Niket ;
Li, Guoliang ;
Camden, Jon P. ;
Masiello, David J. .
ANNUAL REVIEW OF PHYSICAL CHEMISTRY, VOL 67, 2016, 67 :331-357
[36]   OBSERVATION OF SURFACE PHONONS ON NI(111) BY ELECTRON ENERGY-LOSS SPECTROSCOPY [J].
IBACH, H ;
BRUCHMANN, D .
PHYSICAL REVIEW LETTERS, 1980, 44 (01) :36-39
[37]   Electron energy-loss spectroscopy - Inelastic electron scattering [J].
不详 .
D-D EXCITATIONS IN TRANSITION-METAL OXIDES, 2001, 170 :27-50
[38]   QUANTITATIVE CHEMICAL-ANALYSIS OF RHODIZITE, USING ELECTRON ENERGY-LOSS SPECTROSCOPY [J].
SAUER, H ;
ENGEL, W ;
BRYDSON, R .
EUROPEAN JOURNAL OF CELL BIOLOGY, 1987, 44 :50-50
[39]   THE INFLUENCE OF LENS CHROMATIC ABERRATION ON ELECTRON ENERGY-LOSS SPECTROSCOPY QUANTITATIVE MEASUREMENTS [J].
YANG, YY ;
EGERTON, RF .
MICROSCOPY RESEARCH AND TECHNIQUE, 1992, 21 (04) :361-367
[40]   Quantitative electron energy-loss spectroscopy (EELS) analyses of lead zirconate titanate [J].
Harkins, P. ;
MacKenzie, M. ;
Craven, A. J. ;
McComb, D. W. .
MICRON, 2008, 39 (06) :709-716