Orbital Entanglement and The Double $d$-Shell Effect in Binary Transition Metal Molecules

Fuente: arXiv
Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Lampert, Julianne S., Krogmeier, Timothy J., Schlimgen, Anthony W., Head-Marsden, Kade
Format: Preprint
Veröffentlicht: 2025
Schlagworte:
Online-Zugang:
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866916720359243776
author Lampert, Julianne S.
Krogmeier, Timothy J.
Schlimgen, Anthony W.
Head-Marsden, Kade
author_facet Lampert, Julianne S.
Krogmeier, Timothy J.
Schlimgen, Anthony W.
Head-Marsden, Kade
contents Accurate modeling of transition metal-containing compounds is of great interest due to their wide-ranging and significant applications. These systems present several challenges from an electronic structure perspective, including significant multi-reference character and many chemically-relevant orbitals. A further complication arises from the so-called double $d$-shell effect, which is known to cause a myriad of issues in the treatment of first-row transition metals with both single- and multi-reference methods. While this effect has been well documented for several decades, a comprehensive understanding of its consequences and underlying causes is still evolving. Here, we characterize the second $d$-shell effect by analyzing the information entropy of correlated wavefunctions in a periodic series of $3d$ and $4d$ transition metal molecular hydrides and oxides. These quantum information techniques provide unique insight into the nuanced electronic structure of these species, and are powerful tools for study of weak and strong correlation in the transition metal $d$ manifold.
format Preprint
id arxiv_https___arxiv_org_abs_2505_02930
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Orbital Entanglement and The Double $d$-Shell Effect in Binary Transition Metal Molecules
Lampert, Julianne S.
Krogmeier, Timothy J.
Schlimgen, Anthony W.
Head-Marsden, Kade
Quantum Physics
Accurate modeling of transition metal-containing compounds is of great interest due to their wide-ranging and significant applications. These systems present several challenges from an electronic structure perspective, including significant multi-reference character and many chemically-relevant orbitals. A further complication arises from the so-called double $d$-shell effect, which is known to cause a myriad of issues in the treatment of first-row transition metals with both single- and multi-reference methods. While this effect has been well documented for several decades, a comprehensive understanding of its consequences and underlying causes is still evolving. Here, we characterize the second $d$-shell effect by analyzing the information entropy of correlated wavefunctions in a periodic series of $3d$ and $4d$ transition metal molecular hydrides and oxides. These quantum information techniques provide unique insight into the nuanced electronic structure of these species, and are powerful tools for study of weak and strong correlation in the transition metal $d$ manifold.
title Orbital Entanglement and The Double $d$-Shell Effect in Binary Transition Metal Molecules
topic Quantum Physics
url https://arxiv.org/abs/2505.02930