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Excess electron states on the microsurfaces of Ne and H
2
clusters
Michael Rosenblit
*
,
Joshua Jortner
*
Corresponding author for this work
School of Chemistry
Tel Aviv University
Research output
:
Contribution to journal
›
Article
›
peer-review
15
Scopus citations
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2
clusters'. Together they form a unique fingerprint.
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Keyphrases
Cluster Size
100%
Excess Electron
100%
Electron States
100%
Microsurfacing
100%
Oscillator Strength
50%
Scaling Relations
33%
Size Dependence
33%
Electronic States
33%
Electron Localization
33%
Transition Energy
33%
Electronic Spectroscopy
33%
Dielectric Constant
16%
Scaling Analysis
16%
Field-induced
16%
Cluster Model
16%
Non-rigid
16%
Electric-field-induced
16%
Spectroscopic Data
16%
Lower Limit
16%
Energy Levels
16%
Repulsive Interaction
16%
Charge Distribution
16%
Model Potential
16%
Aggregation State
16%
Polarization Potential
16%
DC Electric Field
16%
Surface States
16%
Ground Electronic State
16%
Flat Surface
16%
Isotope Effect
16%
Scaling Function
16%
Cluster Structure
16%
Energy Strength
16%
Condensed Materials
16%
Excited Electronic States
16%
2p States
16%
Cluster Size Effect
16%
Universal Scaling
16%
Critical Cluster
16%
Near-threshold Scaling
16%
Cluster Charge
16%
Quasi-free Electron
16%
Chemistry
Oscillator Strength
100%
Electric Field
66%
Energetics
66%
Electronic State
66%
Electron Localization
66%
Electronic Spectroscopy
66%
Dielectric Constant
33%
Charge Distribution
33%
Substance Spectroscopy
33%
Surface State
33%
Excited Electronic State
33%
Mechanical Strength
33%
Size Effect
33%
Cluster Structure
33%
Cluster Model
33%
Permittivity
33%
Isotope Effect
33%
Diethylstilbestrol
33%
Physics
Electron State
100%
Oscillator Strength
100%
Energetics
66%
Electric Field
66%
Permittivity
33%
Flat Surface
33%
Isotope Effect
33%
Charge Distribution
33%