| Literature DB >> 25256417 |
Heather M Neu1, Matthew G Quesne, Tzuhsiung Yang, Katharine A Prokop-Prigge, Kyle M Lancaster, James Donohoe, Serena DeBeer, Sam P de Visser, David P Goldberg.
Abstract
Addition of an anionic donor to an Mn(V) (O) porphyrinoid complex causes a dramatic increase in 2-electron oxygen-atom-transfer (OAT) chemistry. The 6-coordinate [Mn(V) (O)(TBP8 Cz)(CN)](-) was generated from addition of Bu4 N(+) CN(-) to the 5-coordinate Mn(V) (O) precursor. The cyanide-ligated complex was characterized for the first time by Mn K-edge X-ray absorption spectroscopy (XAS) and gives MnO=1.53 Å, MnCN=2.21 Å. In combination with computational studies these distances were shown to correlate with a singlet ground state. Reaction of the CN(-) complex with thioethers results in OAT to give the corresponding sulfoxide and a 2e(-) -reduced Mn(III) (CN)(-) complex. Kinetic measurements reveal a dramatic rate enhancement for OAT of approximately 24 000-fold versus the same reaction for the parent 5-coordinate complex. An Eyring analysis gives ΔH(≠) =14 kcal mol(-1) , ΔS(≠) =-10 cal mol(-1) K(-1) . Computational studies fully support the structures, spin states, and relative reactivity of the 5- and 6-coordinate Mn(V) (O) complexes.Entities:
Keywords: manganese; oxygen-atom-transfer; porphyrinoids; spin state reactivity; sulfoxidation
Mesh:
Substances:
Year: 2014 PMID: 25256417 PMCID: PMC4321347 DOI: 10.1002/chem.201404349
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236
Scheme 1Formation of 6-coordinate [MnV(O)(TBP8Cz)(CN)]−.
Figure 1A) Comparison of the normalized Mn K-edge XAS data for MnV(O)(TBP8Cz) with zero (red), 10 (dark blue) and 100 (light blue) equivalents of added Bu4N+CN− in benzonitrile. B) EXAFS data (solid lines) and fits (dashed lines) for MnV(O)(TBP8Cz) (red) and MnV(O)(TBP8Cz)+100 equivalents of Bu4N+CN− (blue). C) The corresponding FTs (solid) and fits (dashed).
Scheme 2Reaction of [MnV(O)(TBP8Cz)(CN)]− with thioether substrates.
Figure 2UV/Vis spectral changes (0–80 s) for the reaction of [MnV(O)(TBP8Cz)(CN)]− (11 μm) (419, 634 nm) with excess DBS (500 equiv) to give [MnIII(TBP8Cz)(CN)]− (443, 492, 694 nm) in toluene at 25 °C. Inset: changes in absorbance versus time for the growth of [MnIII(TBP8Cz)(CN)]− (694 nm) and the decay of [MnV(O)(TBP8Cz)(CN)]− (634 nm).
Figure 3Eyring plot for the reaction of [MnV(O)(TBP8Cz)(CN)]− (11.5 μm) with DBS (21 mm) in toluene from −20 to 40 °C.
Kinetic and activation parameters for OAT reactions with dibutyl sulfide.
| MnV(O)(TBP8Cz) | MnV(O)(TBP8Cz+.) | [MnV(O)(TBP8Cz)(CN)]− | |
|---|---|---|---|
| 3.8×10−4 | (6.2±0.2)×10−3 | 9.2±0.3 | |
| Δ | 16±1 | 7.0±0.8 | 14±0.4 |
| Δ | −20±4 | −45±3 | −10±0.8 |
| Δ | 22±2 | 20±2 | 17±0.5 |
From Ref. [8d].
Values in m−1 s−1 at 298 K.
Extrapolated from a ln(k/T) versus 1/T plot.
Values in kcal mol−1.
Values in cal K−1 mol−1.
At 298 K.
Figure 4Potential energy profile calculated at UB3LYP/BS2 level of theory for OAT reactions involving [MnV(O)(H8Cz)] and [MnV(O)(H8Cz)(CN)]− with DMS. Energies (ΔE+ZPE+Esolv) are given. Also shown are optimized transition state geometries (right-hand side) with bond lengths in angstroms and the imaginary mode in wave numbers.