Polysiloxane-bound ligand accelerated catalysis: a modular approach to heterogeneous and homogeneous macromolecular asymmetric dihydroxylation ligands
Publication type: Journal Article
Publication date: 2004-08-10
scimago Q2
wos Q2
SJR: 0.600
CiteScore: 5.2
Impact factor: 2.7
ISSN: 14770520, 14770539
DOI:
10.1039/b406341d
PubMed ID:
15305208
Organic Chemistry
Biochemistry
Physical and Theoretical Chemistry
Abstract
Polysiloxane acts as a modular scaffold for macromolecular reagent development. Two separate components were covalently integrated into one material, one constituent provided reagent functionality, the other modulated solubility. In particular cinchona alkaloid based ligands used in the osmium tetroxide catalyzed asymmetric dihydroxylation (AD) reaction were covalently attached to commercially available polysiloxane. To enhance the reactivity of these polymeric ligands, multifunctional reagents were designed to include both the cinchona alkaloid and an alkoxyethylester solubilizing moiety providing random co-polymers. While the mono-functional materials led to heterogeneous conditions, the bi-functional polymers resulted in homogeneous reaction mixtures. Although both reagent types provided diol products with excellent yield and selectivity (>99% ee in nearly quantitative yield) the homogeneous analog has nearly twice the reactivity. Every repeat unit in the heterogeneous material was functionalized along the polysiloxane backbone while approximately half of these sites contained ligand in the homogeneous version. This approach led to macromolecular catalysts with high loadings of ligand and therefore materials with very low equivalent weights. Although these polymers are highly loaded they do maintain reactivity on a par with their free ligand counterpart. Using straightforward purification techniques (i.e. precipitation, simple filtration, or ultrafiltration) these polymeric ligands were easily separated from diol product and reused multiple times. Polysiloxane is a viable support for the catalysis of AD reactions and may provide a generally useful backbone for other catalytic systems.
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34
Total citations:
34
Citations from 2024:
2
(5.88%)
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GOST
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Declue M. S., Siegel J. P. Polysiloxane-bound ligand accelerated catalysis: a modular approach to heterogeneous and homogeneous macromolecular asymmetric dihydroxylation ligands // Organic and Biomolecular Chemistry. 2004. Vol. 2. No. 16. p. 2287.
GOST all authors (up to 50)
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Declue M. S., Siegel J. P. Polysiloxane-bound ligand accelerated catalysis: a modular approach to heterogeneous and homogeneous macromolecular asymmetric dihydroxylation ligands // Organic and Biomolecular Chemistry. 2004. Vol. 2. No. 16. p. 2287.
Cite this
RIS
Copy
TY - JOUR
DO - 10.1039/b406341d
UR - https://doi.org/10.1039/b406341d
TI - Polysiloxane-bound ligand accelerated catalysis: a modular approach to heterogeneous and homogeneous macromolecular asymmetric dihydroxylation ligands
T2 - Organic and Biomolecular Chemistry
AU - Declue, Michael S
AU - Siegel, Jay P.
PY - 2004
DA - 2004/08/10
PB - Royal Society of Chemistry (RSC)
SP - 2287
IS - 16
VL - 2
PMID - 15305208
SN - 1477-0520
SN - 1477-0539
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2004_Declue,
author = {Michael S Declue and Jay P. Siegel},
title = {Polysiloxane-bound ligand accelerated catalysis: a modular approach to heterogeneous and homogeneous macromolecular asymmetric dihydroxylation ligands},
journal = {Organic and Biomolecular Chemistry},
year = {2004},
volume = {2},
publisher = {Royal Society of Chemistry (RSC)},
month = {aug},
url = {https://doi.org/10.1039/b406341d},
number = {16},
pages = {2287},
doi = {10.1039/b406341d}
}
Cite this
MLA
Copy
Declue, Michael S., and Jay P. Siegel. “Polysiloxane-bound ligand accelerated catalysis: a modular approach to heterogeneous and homogeneous macromolecular asymmetric dihydroxylation ligands.” Organic and Biomolecular Chemistry, vol. 2, no. 16, Aug. 2004, p. 2287. https://doi.org/10.1039/b406341d.