Practical Phase-Space Electronic Hamiltonians for Ab Initio Dynamics
Modern electronic structure theory is built around the Born-Oppenheimer approximation and the construction of an electronic Hamiltonian H_{el}(X) that depends on the nuclear position X (and not the nuclear momentum P). In this article, using the well-known theory of electron translation (Gamma'...
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Zusammenfassung: | Modern electronic structure theory is built around the Born-Oppenheimer
approximation and the construction of an electronic Hamiltonian H_{el}(X) that
depends on the nuclear position X (and not the nuclear momentum P). In this
article, using the well-known theory of electron translation (Gamma') and
rotational (Gamma'') factors to couple electronic transitions to nuclear
motion, we construct a practical phase-space electronic Hamiltonian that
depends on both nuclear position and momentum, H_{PS}(X,P). While classical
Born-Oppenheimer dynamics that run along the eigensurfaces of the operator
H_{el}(X) can recover many nuclear properties correctly, we present some
evidence that motion along the eigensurfaces of H_{PS}(X,P) can better capture
both nuclear and electronic properties (including the elusive electronic
momentum studied by Nafie). Moreover, only the latter (as opposed to the
former) conserves the total linear and angular momentum in general. |
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DOI: | 10.48550/arxiv.2401.14327 |