E2(η6–Be6H6) (E = Si–Pb): Doubly Aromatic Inverse-Sandwich Complexes

Abstract We report E2(η6-Be6H6) (E═Si, Ge, Sn, Pb), a new family of doubly aromatic inverse sandwich clusters in which a tetrel diatomic is sandwiched between a beryllium hydride ring. All four members adopt a singlet D6h global minimum, separated from the nearest competing isomer by 31.3, 29.1, 19.8, and 8.4 kcal·mol–1 for E═Si, Ge, Sn, and Pb, respectively, with large HOMO–LUMO gaps of 4.3–4.8 eV and dynamic stability confirmed up to at least 500 K. The electronic structure is strongly polarized: the tetrel atoms carry large negative charges (−2.1 to −1.8 |e|) and interact with the Be6H6 ring through predominantly ionic but non-negligible covalent E–Be contacts, while the ring is sustained by six Be–H–Be three-center two-electron bonds and the E2 fragment retains significant E–E bonding character. A delocalized 6σ/6π bonding pattern spans the full inverse sandwich framework, and diatropic σ and π ring currents─with total ring-current strengths of 15.6–19.5 nA·T–1─confirm σ/π double Hückel aromaticity throughout the series. These results extend the Be6H6-based inverse sandwich family to group 14 and show that the aromatic electron count in these systems is governed by the electron-accepting capacity of the axial fragment.

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Journal
The Journal of Physical Chemistry A
Published
2026-09-06
DOI
https://doi.org/10.1021/acs.jpca.6c03758
Primary Topic
Synthesis and characterization of novel inorganic/organometallic compounds
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article
Field-Weighted Citation Impact
0.00

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article

E2(η6–Be6H6) (E = Si–Pb): Doubly Aromatic Inverse-Sandwich Complexes

William Tiznado, Diego Inostroza, Luis Alvarez‐Thon, Luis Leyva‐Parra et al.
The Journal of Physical Chemistry A
Synthesis and characterization of novel inorganic/organometallic compounds
article

E2(η6–Be6H6) (E = Si–Pb): Doubly Aromatic Inverse-Sandwich Complexes

William Tiznado, Diego Inostroza, Luis Alvarez‐Thon, Luis Leyva‐Parra, Williams García-Argote, Dumer S. Sacanamboy, Viviana Roman-Ventura
article en

Abstract

Abstract We report E2(η6-Be6H6) (E═Si, Ge, Sn, Pb), a new family of doubly aromatic inverse sandwich clusters in which a tetrel diatomic is sandwiched between a beryllium hydride ring. All four members adopt a singlet D6h global minimum, separated from the nearest competing isomer by 31.3, 29.1, 19.8, and 8.4 kcal·mol–1 for E═Si, Ge, Sn, and Pb, respectively, with large HOMO–LUMO gaps of 4.3–4.8 eV and dynamic stability confirmed up to at least 500 K. The electronic structure is strongly polarized: the tetrel atoms carry large negative charges (−2.1 to −1.8 |e|) and interact with the Be6H6 ring through predominantly ionic but non-negligible covalent E–Be contacts, while the ring is sustained by six Be–H–Be three-center two-electron bonds and the E2 fragment retains significant E–E bonding character. A delocalized 6σ/6π bonding pattern spans the full inverse sandwich framework, and diatropic σ and π ring currents─with total ring-current strengths of 15.6–19.5 nA·T–1─confirm σ/π double Hückel aromaticity throughout the series. These results extend the Be6H6-based inverse sandwich family to group 14 and show that the aromatic electron count in these systems is governed by the electron-accepting capacity of the axial fragment.

The Journal of Physical Chemistry A
Universidad Católica Andrés Bello (VE), Universidad de las Américas (NI), University of the Americas (CL), Universidad Andrés Bello (CL), Universidad de las Américas (MX), Universidad Central de Chile (CL), Universidad Dr. Andrés Bello (SV)
Agencia Nacional de Investigación y Desarrollo
Openalex Percentile: Top 25%
Synthesis and characterization of novel inorganic/organometallic compounds
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