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Ionization potentials of large sodium doped ammonia clusters
1Max-Planck-Institut für Dynamik und Selbstorganisation, D-37073 Göttingen, Germany.
The Journal of Chemical Physics
|April 26, 2005
Summary
Sodium-doped ammonia clusters show decreasing ionization potentials with increasing size. These findings align with a dielectric continuum model, offering insights into solvated electron behavior in ammonia clusters.
Area of Science:
- Physical Chemistry
- Atomic and Molecular Physics
- Condensed Matter Physics
Background:
- Ammonia clusters are model systems for studying solvation effects.
- Understanding the behavior of electrons in clusters is crucial for various chemical and physical processes.
Purpose of the Study:
- To investigate the ionization potentials (IP) of sodium-doped ammonia clusters, Na(NH3)n.
- To determine how IP changes with cluster size (n).
- To compare experimental results with theoretical models, specifically the dielectric continuum model.
Main Methods:
- Generation of Na(NH3)n clusters via supersonic expansion and sodium atom doping.
- Photoionization of clusters using a tunable dye laser system.
- Mass analysis of ions using a reflectron time-of-flight mass spectrometer to measure size-dependent ionization potentials.
Main Results:
- Observed a continuous decrease in ionization potential with increasing cluster size for n > 17.
- Identified a plateau for 10 ≤ n ≤ 17 and smaller steps at n = 24, 35, and 59.
- Extrapolated ionization potential for infinite cluster size (IP(n=infinity)) to be 1.66 ± 0.01 eV.
- IPs showed a linear relationship with (n+1)^(-1/3), consistent with the dielectric continuum model.
Conclusions:
- The observed size-dependent ionization potentials support the dielectric continuum model for solvated electrons in ammonia clusters.
- The extrapolated IP(n=infinity) provides a benchmark for bulk ammonia properties.
- Differences in IPs compared to negative ammonia cluster ions and liquid ammonia solutions are attributed to counterion effects and their distances from the solvated electron.