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The rotational orientation of cyclopentadienyl rings usually has no effect on d-orbital energy levels and splitting in transition metal complexes. With related but less symmetrical carbocyclic ligands, however, the magnetic properties of the associated complexes can be altered by the alignment of the ligands. Examples of this effect are found in substituted organochromium(II) bis(indenyl) complexes. The monosubstituted compounds (1-RC(9)H(6))(2)Cr (R = t-Bu, SiMe(3)) are prepared from the substituted lithium indenides and CrCl(2) in THF; they are high-spin species with four unpaired electrons. Their spin state likely reflects that in the unknown monomeric (C(9)H(7))(2)Cr, which is calculated to have a high-spin (S = 2) ground state in the staggered configuration (180 degrees rotation angle). However, the analogous bis(indenyl) complexes containing t-Bu or SiMe(3) groups in both the 1 and 3 positions on the indenyl ligands ((1,3-R(2)C(9)H(5))(2)Cr) are low-spin compounds with two unpaired electrons. X-ray diffraction results indicate that [1-(t-Bu)C(9)H(6)](2)Cr exists in a staggered conformation, with Cr-C (av) = 2.32(4) A. In contrast, the average Cr-C distances in [1,3-(t-Bu or SiMe(3))(2)C(9)H(5)](2)Cr are 2.22(2) and 2.20(2) A, respectively, and the rings are in a gauche configuration, with rotation angles of 87 degrees. The indenyl conformations are sterically imposed by the bulk of the t-Bu and SiMe(3) substituents. The change from a staggered to a gauche indenyl orientation lowers the symmetry of a (C(9)H(7))(2)M complex and allows greater mixing of metal and ligand orbitals. Calculations indicate that previously nonbonding pi orbitals of the indenyl anion are able to interact with the chromium d orbitals, producing bonding and antibonding combinations. The latter remain unpopulated, and the resulting increase in the HOMO-LUMO gap forces the complexes to adopt a low-spin configuration. The possibility of using sterically imposed ligand rotation as a means of spin-state manipulation makes indenyl compounds a potentially rich source of magnetically adjustable molecules.
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http://dx.doi.org/10.1021/ja012390a | DOI Listing |
Angew Chem Int Ed Engl
September 2025
Department of Chemistry, Iowa State University, Ames, IA, 50011, United States.
Surface grafted organozirconium catalyzes C─H/Et─Al exchange reactions, involving saturated hydrocarbons and AlEt, to afford organoaluminum compounds and ethane. The Zr(OBu)@SiO-AlO (1) catalyst contains monopodal ≡SiO─Zr(OBu) and only a few residual silanols (<5%). Nonetheless, these silanols are the Achille's heel of 1, providing a pathway for surface and catalyst degradation during catalysis, limiting the alkylaluminum yield and catalyst turnover.
View Article and Find Full Text PDFInorg Chem
November 2024
Department of Chemistry, University of California, Irvine, California 92697-2025, United States.
The syntheses of Ln(II) (aryloxide) complexes of Sm, Eu, and Yb have been examined with the bulky aryloxide ligand (OCH-2,6-Ad-4-Bu) [(OAr*); Ad = 1-adamantyl]. These Ln(OAr*)(THF) complexes were pursued for comparison with the (aryloxide) Ln(II) complexes [Ln(OAr*)] (Ln = La, Ce, Nd, Gd, Dy, and Lu), which have 4f5d electron configurations, and with 4f [Yb(OAr*)]. Although the Ln(II) chemistry of Sm, Eu, and Yb is often similar since they all adopt 4f electron configurations, their chemistry is surprisingly diverse with (OAr*).
View Article and Find Full Text PDFInorg Chem
October 2024
Institute of Inorganic Chemistry (AOC), Karlsruhe Institute of Technology (KIT), Kaiserstr. 12, Karlsruhe 76131, Germany.
The reactivity of a mixed-valent silaiminyl-silylene [LSi-Si(NDipp)L] (L = PhC(NBu), Dipp = 2,6-Pr-CH) toward various substituted internal alkynes was investigated. In contrast to previous reports that primarily yield [Si(μ-C)Si]-modified rings via 1,2-addition of two silylenes in the center of the molecule, our study reveals a novel reaction pathway. The introduction of [R-C≡C-R] (R = Ph or SiMe, R = Ph or C≡CSiMe) gave unconventional insertion into one of the amidinate ligands, followed by migration of the {NBu} group to bridge two Si atoms.
View Article and Find Full Text PDFChem Commun (Camb)
March 2024
Research School of Chemistry, Australian National University, Canberra, Australian Capital Territory, ACT 2601, Australia.
The reactions of [W(CBr)(CO)(Tp*)] (Tp* = tris(dimethylpyrazolyl)borate) with LiTeCCR (R = SiMe, SiPr, Pr, Bu, Bu, Ph, CHMe-4, methylimidazol-2-yl) afford the first alkynyltellurolatocarbynes [W(CTeCCR)(CO)(Tp*)]. Both the WC and CC multiple bonds are prone to metal addition as exemplified by treatment with [MCl(SMe)] (M = Cu, Au) to afford the hexametallic complex [WCu(μ-CTeCCSiPr)Cl(CO)(Tp*)] and [WAu(μ-CTeCCSiMe)Cl(CO)-(Tp*)] which evolves to the unusual hypervalent [WAu(μ-CTeCl)(SMe)(CO)(Tp*)].
View Article and Find Full Text PDFChemistry
June 2023
Institute of Inorganic Chemistry, University of Regensburg, 93053, Regensburg, Germany.
The functionalization of the polypnictogen ligand complexes [Cp'' Zr(η -E )] (E=P (1 a), As (1 b); Cp''=1,3-di-tertbutyl-cyclopentadienyl) is focused to modify the features of the polypnictogen unit to explore new synthetic pathways for further transformations. The reaction behavior of 1 towards main group nucleophiles is investigated. The reaction of 1 a with BuLi leads to the ionic product Li[Cp'' Zr(η -P Bu)] (2) where an organic group is attached to a bridgehead phosphorus atom of the butterfly unit.
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