Abstract
A quantum chemical model for the study of the electronic structure of compressed atoms lends itself to a perturbation-theoretic analysis. It is shown, both analytically and numerically, that the increase of the electronic energy with increasing compression depends on the electronic configuration, as a result of the variable spatial extent of the atomic orbitals involved. The different destabilization of the electronic states may lead to an isobaric change of the ground-state electronic configuration, and the same first-order model paves the way to a simple thermodynamical interpretation of this process.
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CITATION STYLE
Cammi, R., Rahm, M., Hoffmann, R., & Ashcroft, N. W. (2020). Varying Electronic Configurations in Compressed Atoms: From the Role of the Spatial Extension of Atomic Orbitals to the Change of Electronic Configuration as an Isobaric Transformation. Journal of Chemical Theory and Computation, 16(8), 5047–5056. https://doi.org/10.1021/acs.jctc.0c00443
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