In the presence of a copper catalyst, a series of oximes undergo deconstructive insertion into coumarins to afford structurally interesting dihydrobenzofuran-fused pyridones in moderate to good yields with good functional group compatibility. The reaction likely involves a radical relay annulation, leading to the ring opening of the lactone moiety of the coumarins, and simultaneous formation of three new bonds. The investigation of photoluminescent properties reveals that several obtained compounds may have potential as fluorescent materials.
The realization of sequential and controllable C–H
functionalization
in one step can maximize the utilization of C–H bonds to rapidly
create valuable scaffolds and dramatically increase the atom and functional
group utilization. In this work, we describe an iron-catalyzed relay
C–H functionalization proto col that enables de novo synthesis
of a wide range of pyridines and pyridones. This transformation involves
three-fold C–H functionalization (two Csp3
–H and one Csp2
–H) and allows
the simultaneous generation of three chemical bonds and two rings
in one step. The reaction features operational simplicity, broad substrate
scope (>70 examples), good functional group compatibility, and
the
suitability to derivation of some bioactive molecules. Various control
and kinetic isotope effect experiments were performed to understand
the reaction mechanism. DFT investigations support an interesting
imine α-carbon radical addition/1,5-hydrogen atom transfer/homolytic
aromatic substitution cascade process.
Bridged tetracyclic nitrogen scaffolds are found in numerous biologically active molecules and medicinally relevant structures. Traditional methods usually require tedious reaction steps, and/or the use of structurally specific starting materials....
We describe a synergistic Cu/secondary amine catalysis
for skeletal
transformation of an oxindole core into a quinolinone skeleton, which
generates several structurally new pyridine-fused quinolinones. The
synergistic reactions allow expansion of a five-membered lactam ring
by radical cation-triggered C–C bond cleavage and enable a
further intramolecular cyclization with the aim to construct totally
distinct core skeletons.
In the presence of CuOAc, a series of unsymmetric ureas can be generated in moderate to good yields under mild reaction conditions (10 mol% of CuOAc, 2 equiv t-BuONa or PhONa, 30 °C), using aryl isocyanides and O-benzoyl hydroxylamines as the readily accessible starting materials. The reactions might undergo a cascade process involving isocyanide insertion into the N-O bond and Mumm-type rearrangement. This work represents a rare example of isocyanide insertion into N-O bonds, which would extend isocyanide insertion chemistry.
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