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Klaus H Theopold

Publications and source records attributed to Klaus H Theopold.

9 recordsLinked to original sources

Tetra-mu-chloro-1:2kappa4Cl;1:3kappa4Cl-dimethyl-2kappaC,3kappaC-tetrakis(tetrahydrofuran)-1kappa2O,2kappaO,3kappaO-chromium(II)dizinc(II).

The title compound, [CrZn2(CH3)2Cl4(C4H8O)4], contains a central distorted octahedral Cr atom, located at an inversion center, bound to two tetrahydrofuran ligands and four chloro ligands that bridge to two symmetry-related tetrahedral Zn atoms. The coordination around zinc is completed by methyl and tetrahydrofuran ligands. This structure is compared with a previously reported complex of vanadium, and their differences in metric parameters are explained.

Journal Article↗

A stable alkyl hydride of a first row transition metal.

Hydrogenolysis of a Cr(III) dialkyl precursor produced a binuclear chromium complex with a bridging hydride and a bridging alkyl; this structurally characterized organometallic compound is thermally very stable and does not undergo the expected reductive elimination of alkane.

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Intramolecular C-H activation by inferred terminal cobalt imido intermediates.

Reaction of TpR,MeCo(I) dinitrogen complexes (R = iPr, tBu) with trimethylsilyl azide yields structurally characterized compounds that imply the formation of reactive intermediates of the type TpR,MeCo=NSiMe3. These cobalt imido species apparently abstract hydrogen from the 3-substituent of the Tp-ligand, leading to the formation of amido complexes accompanied by either Co-C bond formation (R = tBu) or C-C bond formation (R = iPr).

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Variable character of O-O and M-O bonding in side-on (eta(2)) 1:1 metal complexes of O2.

The structures and the O-O and M-O bonding characters of a series of reported side-on (eta(2)) 1:1 metal complexes of O(2) are analyzed by using density functional theory calculations. Comparison of the calculated and experimental systems with respect to O-O bond distance, O-O stretching frequency, and O-O and M-O bond orders provides new insights into subtle influences relevant to O(2) activation processes in biology and catalysis. The degree of charge transfer from the generally electron-rich metals to the dioxygen fragment is found to be variable, such that there are species well described as superoxides, others well described as peroxides, and several cases having intermediate character. Increased charge transfer to dioxygen takes place via overlap of the metal d(xy) orbital with the in-plane pi* orbital of O(2) and results in increased M-O bond orders and decreased O-O bond orders. Comparison of theory and experiment over the full range of compounds studied suggests that reevaluation of the O-O bond lengths determined from certain x-ray crystal structures is warranted; in one instance, an x-ray crystal structure redetermination was performed at low temperature, confirming the theoretical prediction. Librational motion of the coordinated O(2) is identified as a basis for significant underestimation of the O-O distance at high temperature.

Chemistry, Physical↗

Hydrogen atom abstraction by a chromium IV oxo complex derived from O2.

The Cr(III) hydroxide [TptBu,MeCr(OH)(pz'H)] BARF (1) is produced by reaction of [TptBu,MeCr(pz'H)]BARF with [TptBu,MeCr(O2)(pz'H)]BARF or oxygen atom donors ONMe3 or PhIO in Et2O. However, reaction of [TptBu,MeCr(pz'H)]BARF with PhIO in pure CH2Cl2 yields the Cr(IV) oxo complex [TptBu,MeCr(O)(pz'H)]BARF (2). 2 abstracts hydrogen atoms from organic molecules with weak C-H bonds to form 1. Both 1 and 2 have been structurally characterized.

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Spin surface crossing in chromium-mediated olefin epoxidation with O(2).

[CpCr(mu-Cl)Cl](2) reacted with dioxygen (O(2)) to produce CpCr(O)Cl(2) (1), which has been structurally characterized. Although 1 oxidized PPh(3) and 1,4-cyclohexadiene catalytically, it did not epoxidize olefins. DFT calculations have been performed on the system to characterize the potential energy surface for the epoxidation of ethylene and, in particular, the consequences of the crossing from the doublet surface of the starting materials to the quartet surface of the product (i.e. a chromium(III) epoxide adduct). These calculations suggested that "spin-blocking" was not a significant problem and that the reaction of CpCr(O)Cl(2) (3) with ethylene should have a lower activation barrier. On the basis of this computational prediction, 3 was prepared; it was found to epoxidize olefins stoichiometrically.

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