| Literature DB >> 35546853 |
Hui-Min Yan1, Ye Tian1, Niu Li1, Rong Chang1, Zhu-Xia Zhang1, Xiao-Yun Zhang1, Wen-Jing Yang1, Zhen Guo1, Yan-Rong Li2.
Abstract
Palladium-catalyzed alkenylation of δ-C(sp3)-H bonds with alkynes was conducted by density functional theory calculations. The present study shows that the dimeric Pd2(OAc)4 mechanism reproduces experimental observations well, including regioselectivity and provides a deep mechanistic insight complementing the monomeric Pd(OAc)2 mechanism recently reported by Chen's group. In addition, the economical heterodimeric Ni-Pd(OAc)4 was predicted to be a potential species for such alkenylation of δ-C(sp3)-H bonds. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35546853 PMCID: PMC9085394 DOI: 10.1039/c8ra06077k
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Scheme 1Pd-catalyzed site-selective alkenylation of δ-(sp3)–H with alkynes.
Scheme 2Dimeric metal catalysed C–H activation model.
Fig. 1The simplified reaction potential energy surface of Pd2(OAc)4-catalyzed alkenylation of C(sp3)–H bond with alkynes. Energies are relative to Pd3(OAc)6 + 1 and are mass balanced.
Fig. 2The dihedral angles (Ψ) of N1–N2–O2–O1 and NPA charges of selected atoms and bond lengths in transition states. The bond lengths are in angstrom.
Pd2(OAc)4-catalyzed asymmetric alkynes insertion: regioselectivity, free energy barrier difference and LUMO π* orbital coefficients of the alkynes
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| Compound | R = Ph | R = iPr |
| Regioselectivity (A : B) | 10 : 1 | 1.8 : 1 |
| ΔΔ | 1.74 | 0.26 |
| Orbital coefficient (%) |
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| LUMO |
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