Electrons on a spherical surface: Physical properties and hollow spherical clusters

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Abstract

We discuss the physical properties of a noninteracting electron gas constrained to a spherical surface. In particular we consider its chemical potentials, its ionization potential, and its electric static polarizability. All these properties are discussed analytically as functions of the number N of electrons. The trends obtained with increasing N are compared with those of the corresponding properties experimentally measured or theoretically evaluated for quasispherical hollow atomic and molecular clusters. Most of the properties investigated display similar trends, characterized by a prominence of shell effects. This leads to the definition of a scale-invariant distribution of magic numbers which follows a power law with critical exponent -0.5. We conclude that our completely mechanistic and analytically tractable model can be useful for the analysis of self-assembling complex systems. © 2012 American Physical Society.

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Cricchio, D., Fiordilino, E., & Persico, F. (2012). Electrons on a spherical surface: Physical properties and hollow spherical clusters. Physical Review A - Atomic, Molecular, and Optical Physics, 86(1). https://doi.org/10.1103/PhysRevA.86.013201

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