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Data from IPP Garching W. Eckstein, MPIPP Garching, Germany

Data from IPP Garching

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Data from IPP Garching. W. Eckstein, MPIPP Garching, Germany. Book: Sputtering by Particle Bombardment Editors: R. Behrisch, W. Eckstein. Introduction and Overview (Behrisch, Eckstein) Computer Simulation of the Sputtering Process (Eckstein, Urbassek) Sputtering Yields (Eckstein) - PowerPoint PPT Presentation

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Page 1: Data from IPP Garching

Data from IPP Garching

W. Eckstein, MPIPP Garching, Germany

Page 2: Data from IPP Garching

Book: Sputtering by Particle BombardmentEditors: R. Behrisch, W. Eckstein

• Introduction and Overview (Behrisch, Eckstein)• Computer Simulation of the Sputtering Process

(Eckstein, Urbassek)• Sputtering Yields (Eckstein)• Results of Molecular Dynamics Simulations (Urbassek)• Energy and Angular Distributions of Sputtered Species

(Gnaser)• Chemical Sputtering (Jacob, Roth)• Electronic Sputtering with Swift Heavy Ions (Assmann,

Toulemonde, Trautmann)

Page 3: Data from IPP Garching

• 1. Comparison of experimental and calculated values for the sputtering yield (new book)

• 2. New calculated values and fit formula for the reflection coefficients

Page 4: Data from IPP Garching

Data fitting

• Fitting of calculated yield values for normal

incidence of crystalline (amorphous)

elemental targets

• values calculated with ACAT (Yamamura)

• Values calculated with TRIM.SP (Eckstein)

Page 5: Data from IPP Garching
Page 6: Data from IPP Garching

Advantage of the new fit

• The new fit formula of the sputtering yield

at normal incidence allows a better

description at low energies near the

threshold• The new fit gives more realistic threshold

energies

Page 7: Data from IPP Garching

Dependence on the interaction potential

Page 8: Data from IPP Garching

Influence of inelastic energy loss

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Page 10: Data from IPP Garching

Calculated energy dependencies

• 376 ion – target combinations

• Fitting parameters given in tables

• 266 comparisons with experimental data

• Examples

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Calculated energy dependencies of the sputtering yield at normal incidence (1)

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Calculated energy dependencies of the sputtering yield at normal incidence (2)

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Calculated energy dependencies of the sputtering yield at normal incidence (3)

Page 17: Data from IPP Garching

Calculated angular dependencies

• Fitting of calculated yield values for the angular dependence at a fixed incident energy for elemental targets

• Values calculated with TRIM.SP

• A new fit formula for the angular dependence of the sputtering yield at a fixed energy allows a

better description for low mass ratios and at low energies

Page 18: Data from IPP Garching
Page 19: Data from IPP Garching

Calculated angular dependencies

• 629 calculated angular dependencies

• fitting parameters given in tables

• 117 comparisons with experimental data

• examples

Page 20: Data from IPP Garching

Angular dependence of the yield

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Page 22: Data from IPP Garching
Page 23: Data from IPP Garching

Calculated angular dependencies of the sputtering yield at specific energies

Page 24: Data from IPP Garching

Main reasons for deviations

Experiment: surface roughness (up to a

(factor of 5 for oblique incidence)

implantation of gaseous species

(up to 30%)

Adsorption of surface impurities

• Calculations: interaction potential

inelastic energy loss

Page 25: Data from IPP Garching

Multicomponent targets

• Compounds, alloys, isotopic mixtures

• Bombardment with nonvolatile species

• Fluence dependent yields

• (yield oscillations)

Page 26: Data from IPP Garching

Oscillations in the partial yield

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Other yield effects

• Temperature dependence

• (yields below threshold, magnetic state)

• Yield fluctuations (ASI distributions)

• Time evolution of the yield

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