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Web Table 1. Free energy profile of the uncatalysed model cycloaddition reaction

Title: Web Table 1. Free energy profile of the uncatalysed model cycloaddition reaction
Authors: Rzepa, HS
Diez, S
Lal, S
Item Type: Dataset
Abstract: Two complementary catalytic systems are reported for the 1,3-dipolar cycloaddition of azides and iodoalkynes. These are based on two commercially available/readily available copper complexes, [CuCl(IPr)] or [CuI(PPh3)3], which are active at low metal loadings and in the absence of any other additive (IPr system). These systems were used for the first reported mechanistic studies on this particular reaction. An experimental/computational-DFT approach allowed to establish that 1) some iodoalkynes might be prone to dehalogenation under copper catalysis conditions and, more importantly, 2) that two distinct mechanistic pathways are likely to be competitive with these catalysts; through a copper(III) metallacycle or via direct p-activation of the starting alkyne.
Two complementary catalytic systems are reported for the 1,3-dipolar cycloaddition of azides and iodoalkynes. These are based on two commercially available/readily available copper complexes, [CuCl(IPr)] or [CuI(PPh3)3], which are active at low metal loadings and in the absence of any other additive (IPr system). These systems were used for the first reported mechanistic studies on this particular reaction. An experimental/computational-DFT approach allowed to establish that 1) some iodoalkynes might be prone to dehalogenation under copper catalysis conditions and, more importantly, 2) that two distinct mechanistic pathways are likely to be competitive with these catalysts; through a copper(III) metallacycle or via direct p-activation of the starting alkyne.
Two complementary catalytic systems are reported for the 1,3-dipolar cycloaddition of azides and iodoalkynes. These are based on two commercially available/readily available copper complexes, [CuCl(IPr)] or [CuI(PPh3)3], which are active at low metal loadings and in the absence of any other additive (IPr system). These systems were used for the first reported mechanistic studies on this particular reaction. An experimental/computational-DFT approach allowed to establish that 1) some iodoalkynes might be prone to dehalogenation under copper catalysis conditions and, more importantly, 2) that two distinct mechanistic pathways are likely to be competitive with these catalysts; through a copper(III) metallacycle or via direct p-activation of the starting alkyne.
Issue Date: 1-Dec-2013
URI: http://hdl.handle.net/10044/1/30255
DOI: http://dx.doi.org/10.6084/m9.figshare.865637
Keywords: organocopper
Computational Chemistry
Appears in Collections:Faculty of Natural Sciences - Research Data



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