| Literature DB >> 34163858 |
Akane Suzuki1, Xueying Guo2, Zhenyang Lin2, Makoto Yamashita1.
Abstract
A di(o-tolyl)borylgoldEntities:
Year: 2020 PMID: 34163858 PMCID: PMC8179162 DOI: 10.1039/d0sc05478j
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1(a) Reaction of isolated borylcopper complex with aldehyde; (b) DFT-calculated mechanism of boryl migration from the carbon to the oxygen atom; (c) boryl migration from the carbon to the oxygen atom of an alkoxide; (d) bora-Brook rearrangement; and (e) catalytic addition of allyl bromide to an imine.
Scheme 2Reactivity of (a) TM–dihaloboryl and (b) –diorganoboryl complexes (TM: transition metal; X: halogen; Y: nucleophile; LB: Lewis base; R: alkyl or aryl).
Scheme 3(a)–(c) Characteristic reactions of TM-alumanyl complexes in which a Lewis base is coordinated to the Al atom.
Scheme 4Synthesis of diarylborylgold complex 2 and its complexation with a Lewis base (LB: pyridine or DMAP) at the B atom.
Fig. 1Molecular structures of 2 with thermal ellipsoids at 50% probability; disordered o-tolyl groups, one of two independent molecules, and hydrogen atoms omitted for clarity.
Fig. 2Comparison of the frontier molecular orbitals of (IPr)Au–Bpin,[19]2, 3a, and 3b together with their energy levels.
Fig. 3UV-Vis spectra of 2 and 3a in toluene solution at room temperature.
Scheme 5Reaction of 2 with Xyl-substituted isocyanide.
Fig. 4Molecular structures of (a) 4, (b) 5, (c) 6, and (d) 6-Mes with thermal ellipsoids at 50% probability; hydrogen atoms omitted for clarity.
Scheme 6Reaction of 2 with CX multiple bonds (X = N, O).
Fig. 5Molecular structures of (a) 7, (b) 8, (c) 9, and (d) 10 with thermal ellipsoids at 50% probability; hydrogen atoms are omitted for clarity.
Scheme 7Calculated energy profile for the reaction of model compound 2′ with PhCHO to form 7′. Relative free energies and electronic energies (in parentheses) are given in kcal mol−1.
Scheme 8Calculated energy profile for the reaction of model compound 2′ with benzophenone to form 8′. Relative free energies and electronic energies (in parentheses) are given in kcal mol−1.
Scheme 9Calculated energy profile for the reaction of model compound 2′ with p-FC6H4COCl to form 9′. Relative free energies and electronic energies (in parentheses) are given in kcal mol−1.
Scheme 10Calculated energy profile for the reaction of model compound 2′ with N,N-dimethylcarbodiimide to form 10′. Relative free energies and electronic energies (in parentheses) are given in kcal mol−1.
Fig. 6HOMOs of (a) 2′, (b) 3b′, (c) Coord_PhCHO, (d) Coord_Ph2CO, (e) Coord_ArCOCl, and (f) Coord_CDI.
Energy levels (a.u.) of the frontier orbitals and the corresponding energy gaps for 2′, 3b′, and the Lewis acid–base adducts
| HOMO | LUMO | Gap | |
|---|---|---|---|
| 2′ (DFT) | −0.19272 | −0.03741 | 0.15531 |
| 3b′ (DFT) | −0.14199 | −0.01673 | 0.12526 |
| Coord_PhCHO | −0.17414 | −0.06629 | 0.10785 |
| Coord_Ph2CO | −0.17097 | −0.06135 | 0.10962 |
| Coord_ArCOCl | −0.17522 | −0.07742 | 0.09780 |
| Coord_CDI | −0.18104 | −0.02006 | 0.16098 |
Fig. 7HOMOs of (a) TS_add_PhCHO, (b) TS_add_Ph2CO, (c) TS_add_ArCOCl, and (d) TS_add_CDI.
Scheme 11Calculated energy profile for the reaction of model compound 2′ with Xyl–NC to form 4′, 5′, and 6′. Relative free energies and electronic energies (in parentheses) are given in kcal mol−1.