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Experimental and theoretical comparison between absorption, total electron yield and fluorescence spectra of the thulium M5 edge

Identifieur interne : 001360 ( Pascal/Curation ); précédent : 001359; suivant : 001361

Experimental and theoretical comparison between absorption, total electron yield and fluorescence spectra of the thulium M5 edge

Auteurs : M. Pompa [France] ; A. M. Flank [France] ; P. Lagarde [France] ; J. Rife [États-Unis] ; I. Stekhin [Russie] ; M. Nakazawa [Japon] ; H. Ogasawara [Russie] ; A. Kotani [Japon]

Source :

RBID : Pascal:97-0426195

Descripteurs français

English descriptors

Abstract

Beside the now well known self-absorption effect, several phenomena related to the multiplet structure of the intermediate state the occur which will render the X-ray fluorescence different from the true absorption result on 3d transition metals at the L edge and on the M4,5 edges of rare earths. Special selection rules of the radiative de-excitation process may play an important role there. We have measured the absorption coefficient of a thin film of thulium deposited onto an aluminum foil, at room temperature, through the simultaneous detection of the transmission, 160 eV bandwidth fluorescence yield and total electron yield. While transmission and electron yield results are very similar, as expected for a very thin sample, the fluorescence yield spectrum is definitely different. Theoretically, the resonant X-ray fluorescence spectrum was calculated using an atomic model, and then integrated over the emitted energy, to predict the fluorescence yield spectrum. A very good agreement is obtained between the theory and experiment.
pA  
A01 01  1    @0 1155-4339
A03   1    @0 J. phys., IV
A05       @2 7
A06       @2 2 @3 PART1
A08 01  1  ENG  @1 Experimental and theoretical comparison between absorption, total electron yield and fluorescence spectra of the thulium M5 edge
A11 01  1    @1 POMPA (M.)
A11 02  1    @1 FLANK (A. M.)
A11 03  1    @1 LAGARDE (P.)
A11 04  1    @1 RIFE (J.)
A11 05  1    @1 STEKHIN (I.)
A11 06  1    @1 NAKAZAWA (M.)
A11 07  1    @1 OGASAWARA (H.)
A11 08  1    @1 KOTANI (A.)
A12 01  1    @1 GOULON (J.) @9 ed.
A12 02  1    @1 GOULON-GINET (C.) @9 ed.
A12 03  1    @1 BROOKES (N. B.) @9 ed.
A14 01      @1 LURE, bâtiment 209d, Centre Universitaire @2 91405 Orsay @3 FRA @Z 1 aut. @Z 2 aut. @Z 3 aut.
A14 02      @1 Naval Research Lab., code 6686, 4555 Overlook Ave. SW @2 Washington DC 20375 @3 USA @Z 4 aut.
A14 03      @1 Physical Department, Rostov State University @2 Rostov-on-Don 344104 @3 RUS @Z 5 aut. @Z 7 aut.
A14 04      @1 Institute for Solid State Physics, University of Tokyo, Roppongi @2 Minato-ku, Tokyo 106 @3 JPN @Z 6 aut. @Z 8 aut.
A15 01      @1 European Synchrotron Radiation Facility (ESRF), BP 220 @2 38043 Grenoble @3 FRA @Z 1 aut. @Z 2 aut. @Z 3 aut.
A18 01  1    @1 European Synchrotron Radiation Facility @2 Grenoble @3 FRA @9 patr.
A18 02  1    @1 Ministère de l'éducation nationale @2 Paris @3 FRA @9 patr.
A18 03  1    @1 Centre national de la recherche scientifique @2 Paris @3 FRA @9 patr.
A18 04  1    @1 Commissariat à l'énergie atomique @2 Paris @3 FRA @9 patr.
A18 05  1    @1 Société française de chimie @2 Paris @3 FRA @9 patr.
A20       @2 C2.159-C2.160
A21       @1 1997
A23 01      @0 ENG
A43 01      @1 INIST @2 125C @5 354000067431660290
A44       @0 0000 @1 © 1997 INIST-CNRS. All rights reserved.
A45       @0 4 ref.
A47 01  1    @0 97-0426195
A60       @1 P @2 C
A61       @0 A
A64 01  1    @0 Journal de physique. IV
A66 01      @0 FRA
C01 01    ENG  @0 Beside the now well known self-absorption effect, several phenomena related to the multiplet structure of the intermediate state the occur which will render the X-ray fluorescence different from the true absorption result on 3d transition metals at the L edge and on the M4,5 edges of rare earths. Special selection rules of the radiative de-excitation process may play an important role there. We have measured the absorption coefficient of a thin film of thulium deposited onto an aluminum foil, at room temperature, through the simultaneous detection of the transmission, 160 eV bandwidth fluorescence yield and total electron yield. While transmission and electron yield results are very similar, as expected for a very thin sample, the fluorescence yield spectrum is definitely different. Theoretically, the resonant X-ray fluorescence spectrum was calculated using an atomic model, and then integrated over the emitted energy, to predict the fluorescence yield spectrum. A very good agreement is obtained between the theory and experiment.
C02 01  3    @0 001B70H70D
C02 02  3    @0 001B70H70E
C02 03  X    @0 240
C03 01  3  FRE  @0 Etude expérimentale @5 01
C03 01  3  ENG  @0 Experimental study @5 01
C03 02  3  FRE  @0 Etude théorique @5 02
C03 02  3  ENG  @0 Theoretical study @5 02
C03 03  3  FRE  @0 Spectre absorption @5 03
C03 03  3  ENG  @0 Absorption spectra @5 03
C03 04  3  FRE  @0 Fluorescence @5 04
C03 04  3  ENG  @0 Fluorescence @5 04
C03 05  3  FRE  @0 Spectre RX @5 05
C03 05  3  ENG  @0 X-ray spectra @5 05
C03 06  3  FRE  @0 Couche mince @5 06
C03 06  3  ENG  @0 Thin films @5 06
C03 07  3  FRE  @0 Rendement fluorescence @5 07
C03 07  3  ENG  @0 Fluorescence yield @5 07
C03 08  3  FRE  @0 Thulium @2 NC @5 12
C03 08  3  ENG  @0 Thulium @2 NC @5 12
C03 09  3  FRE  @0 7870D @2 PAC @4 INC @5 56
C03 10  3  FRE  @0 7870E @2 PAC @4 INC @5 57
C03 11  3  FRE  @0 Tm @4 INC @5 92
C07 01  3  FRE  @0 Lanthanide @2 NC @5 16
C07 01  3  ENG  @0 Rare earths @2 NC @5 16
N21       @1 258
pR  
A30 01  1  ENG  @1 International Conference on X-Ray Absorption Fine Structure (XAFS IX) @2 9 @3 Grenoble FRA @4 1996-08-26

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<div type="abstract" xml:lang="en">Beside the now well known self-absorption effect, several phenomena related to the multiplet structure of the intermediate state the occur which will render the X-ray fluorescence different from the true absorption result on 3d transition metals at the L edge and on the M4,5 edges of rare earths. Special selection rules of the radiative de-excitation process may play an important role there. We have measured the absorption coefficient of a thin film of thulium deposited onto an aluminum foil, at room temperature, through the simultaneous detection of the transmission, 160 eV bandwidth fluorescence yield and total electron yield. While transmission and electron yield results are very similar, as expected for a very thin sample, the fluorescence yield spectrum is definitely different. Theoretically, the resonant X-ray fluorescence spectrum was calculated using an atomic model, and then integrated over the emitted energy, to predict the fluorescence yield spectrum. A very good agreement is obtained between the theory and experiment.</div>
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</fA66>
<fC01 i1="01" l="ENG">
<s0>Beside the now well known self-absorption effect, several phenomena related to the multiplet structure of the intermediate state the occur which will render the X-ray fluorescence different from the true absorption result on 3d transition metals at the L edge and on the M4,5 edges of rare earths. Special selection rules of the radiative de-excitation process may play an important role there. We have measured the absorption coefficient of a thin film of thulium deposited onto an aluminum foil, at room temperature, through the simultaneous detection of the transmission, 160 eV bandwidth fluorescence yield and total electron yield. While transmission and electron yield results are very similar, as expected for a very thin sample, the fluorescence yield spectrum is definitely different. Theoretically, the resonant X-ray fluorescence spectrum was calculated using an atomic model, and then integrated over the emitted energy, to predict the fluorescence yield spectrum. A very good agreement is obtained between the theory and experiment.</s0>
</fC01>
<fC02 i1="01" i2="3">
<s0>001B70H70D</s0>
</fC02>
<fC02 i1="02" i2="3">
<s0>001B70H70E</s0>
</fC02>
<fC02 i1="03" i2="X">
<s0>240</s0>
</fC02>
<fC03 i1="01" i2="3" l="FRE">
<s0>Etude expérimentale</s0>
<s5>01</s5>
</fC03>
<fC03 i1="01" i2="3" l="ENG">
<s0>Experimental study</s0>
<s5>01</s5>
</fC03>
<fC03 i1="02" i2="3" l="FRE">
<s0>Etude théorique</s0>
<s5>02</s5>
</fC03>
<fC03 i1="02" i2="3" l="ENG">
<s0>Theoretical study</s0>
<s5>02</s5>
</fC03>
<fC03 i1="03" i2="3" l="FRE">
<s0>Spectre absorption</s0>
<s5>03</s5>
</fC03>
<fC03 i1="03" i2="3" l="ENG">
<s0>Absorption spectra</s0>
<s5>03</s5>
</fC03>
<fC03 i1="04" i2="3" l="FRE">
<s0>Fluorescence</s0>
<s5>04</s5>
</fC03>
<fC03 i1="04" i2="3" l="ENG">
<s0>Fluorescence</s0>
<s5>04</s5>
</fC03>
<fC03 i1="05" i2="3" l="FRE">
<s0>Spectre RX</s0>
<s5>05</s5>
</fC03>
<fC03 i1="05" i2="3" l="ENG">
<s0>X-ray spectra</s0>
<s5>05</s5>
</fC03>
<fC03 i1="06" i2="3" l="FRE">
<s0>Couche mince</s0>
<s5>06</s5>
</fC03>
<fC03 i1="06" i2="3" l="ENG">
<s0>Thin films</s0>
<s5>06</s5>
</fC03>
<fC03 i1="07" i2="3" l="FRE">
<s0>Rendement fluorescence</s0>
<s5>07</s5>
</fC03>
<fC03 i1="07" i2="3" l="ENG">
<s0>Fluorescence yield</s0>
<s5>07</s5>
</fC03>
<fC03 i1="08" i2="3" l="FRE">
<s0>Thulium</s0>
<s2>NC</s2>
<s5>12</s5>
</fC03>
<fC03 i1="08" i2="3" l="ENG">
<s0>Thulium</s0>
<s2>NC</s2>
<s5>12</s5>
</fC03>
<fC03 i1="09" i2="3" l="FRE">
<s0>7870D</s0>
<s2>PAC</s2>
<s4>INC</s4>
<s5>56</s5>
</fC03>
<fC03 i1="10" i2="3" l="FRE">
<s0>7870E</s0>
<s2>PAC</s2>
<s4>INC</s4>
<s5>57</s5>
</fC03>
<fC03 i1="11" i2="3" l="FRE">
<s0>Tm</s0>
<s4>INC</s4>
<s5>92</s5>
</fC03>
<fC07 i1="01" i2="3" l="FRE">
<s0>Lanthanide</s0>
<s2>NC</s2>
<s5>16</s5>
</fC07>
<fC07 i1="01" i2="3" l="ENG">
<s0>Rare earths</s0>
<s2>NC</s2>
<s5>16</s5>
</fC07>
<fN21>
<s1>258</s1>
</fN21>
</pA>
<pR>
<fA30 i1="01" i2="1" l="ENG">
<s1>International Conference on X-Ray Absorption Fine Structure (XAFS IX)</s1>
<s2>9</s2>
<s3>Grenoble FRA</s3>
<s4>1996-08-26</s4>
</fA30>
</pR>
</standard>
</inist>
</record>

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