Cargando…

Structure and bonding patterns in heterometallic organometallics with linear Ln–Pd–Ln motifs

Complexes with short intermetallic distances between transition metal fragments and lanthanide (Ln) fragments are fascinating objects of study, owing to the ambiguity of the nature of the interaction. The addition of the divalent lanthanide fragments Cp*(2)Ln(OEt(2)) (Ln = Sm or Yb) to a Pd(ii) comp...

Descripción completa

Detalles Bibliográficos
Autores principales: Cemortan, Valeriu, Simler, Thomas, Moutet, Jules, Jaoul, Arnaud, Clavaguéra, Carine, Nocton, Grégory
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9993901/
https://www.ncbi.nlm.nih.gov/pubmed/36908951
http://dx.doi.org/10.1039/d2sc06933d
_version_ 1784902589272293376
author Cemortan, Valeriu
Simler, Thomas
Moutet, Jules
Jaoul, Arnaud
Clavaguéra, Carine
Nocton, Grégory
author_facet Cemortan, Valeriu
Simler, Thomas
Moutet, Jules
Jaoul, Arnaud
Clavaguéra, Carine
Nocton, Grégory
author_sort Cemortan, Valeriu
collection PubMed
description Complexes with short intermetallic distances between transition metal fragments and lanthanide (Ln) fragments are fascinating objects of study, owing to the ambiguity of the nature of the interaction. The addition of the divalent lanthanide fragments Cp*(2)Ln(OEt(2)) (Ln = Sm or Yb) to a Pd(ii) complex bearing the deprotonated form of the redox-active, non-symmetrical ligand, 2-pyrimidin-2-yl-1H-benzimidazole (Hbimpm), leads to two isostructural complexes, of the general formula (Cp*(2)Ln)(2)[μ-Pd(pyridyl)(2)] (Ln = Sm (4) and Yb (5)). These adducts have interesting features, such as unique linear Ln–Pd–Ln arrangements and short Ln–Pd distances, which deviate from the expected lanthanide contraction. A mixed computational and spectroscopic study into the formation of these adducts gathers important clues as to their formation. At the same time, thorough characterization of these complexes establishes the +3 oxidation state of all the involved Ln centers. Detailed theoretical computations demonstrate that the apparent deviation from lanthanide contraction is not due to any difference in the intermetallic interaction between the Pd and the Ln, but that the fragments are joined together by electrostatic interactions and dispersive forces. This conclusion contrasts with the findings about a third complex, Cp*(2)Yb(μ-Me)(2)PdCp* (6), formed during the reaction, which also possesses a short Yb–Pd distance. Studies at the CASSCF level of theory on this complex show several orbitals containing significant interactions between the 4f and 4d manifolds of the metals. This demonstrates the need for methodical and careful analyses in gauging the intermetallic interaction and the inadequacy of empirical metrics in describing such phenomena.
format Online
Article
Text
id pubmed-9993901
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-99939012023-03-09 Structure and bonding patterns in heterometallic organometallics with linear Ln–Pd–Ln motifs Cemortan, Valeriu Simler, Thomas Moutet, Jules Jaoul, Arnaud Clavaguéra, Carine Nocton, Grégory Chem Sci Chemistry Complexes with short intermetallic distances between transition metal fragments and lanthanide (Ln) fragments are fascinating objects of study, owing to the ambiguity of the nature of the interaction. The addition of the divalent lanthanide fragments Cp*(2)Ln(OEt(2)) (Ln = Sm or Yb) to a Pd(ii) complex bearing the deprotonated form of the redox-active, non-symmetrical ligand, 2-pyrimidin-2-yl-1H-benzimidazole (Hbimpm), leads to two isostructural complexes, of the general formula (Cp*(2)Ln)(2)[μ-Pd(pyridyl)(2)] (Ln = Sm (4) and Yb (5)). These adducts have interesting features, such as unique linear Ln–Pd–Ln arrangements and short Ln–Pd distances, which deviate from the expected lanthanide contraction. A mixed computational and spectroscopic study into the formation of these adducts gathers important clues as to their formation. At the same time, thorough characterization of these complexes establishes the +3 oxidation state of all the involved Ln centers. Detailed theoretical computations demonstrate that the apparent deviation from lanthanide contraction is not due to any difference in the intermetallic interaction between the Pd and the Ln, but that the fragments are joined together by electrostatic interactions and dispersive forces. This conclusion contrasts with the findings about a third complex, Cp*(2)Yb(μ-Me)(2)PdCp* (6), formed during the reaction, which also possesses a short Yb–Pd distance. Studies at the CASSCF level of theory on this complex show several orbitals containing significant interactions between the 4f and 4d manifolds of the metals. This demonstrates the need for methodical and careful analyses in gauging the intermetallic interaction and the inadequacy of empirical metrics in describing such phenomena. The Royal Society of Chemistry 2023-01-20 /pmc/articles/PMC9993901/ /pubmed/36908951 http://dx.doi.org/10.1039/d2sc06933d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Cemortan, Valeriu
Simler, Thomas
Moutet, Jules
Jaoul, Arnaud
Clavaguéra, Carine
Nocton, Grégory
Structure and bonding patterns in heterometallic organometallics with linear Ln–Pd–Ln motifs
title Structure and bonding patterns in heterometallic organometallics with linear Ln–Pd–Ln motifs
title_full Structure and bonding patterns in heterometallic organometallics with linear Ln–Pd–Ln motifs
title_fullStr Structure and bonding patterns in heterometallic organometallics with linear Ln–Pd–Ln motifs
title_full_unstemmed Structure and bonding patterns in heterometallic organometallics with linear Ln–Pd–Ln motifs
title_short Structure and bonding patterns in heterometallic organometallics with linear Ln–Pd–Ln motifs
title_sort structure and bonding patterns in heterometallic organometallics with linear ln–pd–ln motifs
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9993901/
https://www.ncbi.nlm.nih.gov/pubmed/36908951
http://dx.doi.org/10.1039/d2sc06933d
work_keys_str_mv AT cemortanvaleriu structureandbondingpatternsinheterometallicorganometallicswithlinearlnpdlnmotifs
AT simlerthomas structureandbondingpatternsinheterometallicorganometallicswithlinearlnpdlnmotifs
AT moutetjules structureandbondingpatternsinheterometallicorganometallicswithlinearlnpdlnmotifs
AT jaoularnaud structureandbondingpatternsinheterometallicorganometallicswithlinearlnpdlnmotifs
AT clavagueracarine structureandbondingpatternsinheterometallicorganometallicswithlinearlnpdlnmotifs
AT noctongregory structureandbondingpatternsinheterometallicorganometallicswithlinearlnpdlnmotifs