volume 142 issue 34 pages 14588-14607

How to Build Rigid Oxygen-Rich Tricyclic Heterocycles from Triketones and Hydrogen Peroxide: Control of Dynamic Covalent Chemistry with Inverse α-Effect.

Publication typeJournal Article
Publication date2020-07-28
scimago Q1
wos Q1
SJR5.554
CiteScore22.5
Impact factor15.6
ISSN00027863, 15205126
PubMed ID:  32787239
General Chemistry
Catalysis
Biochemistry
Colloid and Surface Chemistry
Abstract
We describe an efficient one-pot procedure that "folds" acyclic triketones into structurally complex, pharmaceutically relevant tricyclic systems that combine high oxygen content with unusual stability. In particular, β,γ'-triketones are converted into three-dimensional polycyclic peroxides in the presence of H2O2 under acid catalysis. These transformations are fueled by stereoelectronic frustration of H2O2, the parent peroxide, where the lone pairs of oxygen are not involved in strongly stabilizing orbital interactions. Computational analysis reveals how this frustration is relieved in the tricyclic peroxide products, where strongly stabilizing anomeric nO→σC-O* interactions are activated. The calculated potential energy surfaces for these transformations combine labile, dynamically formed cationic species with deeply stabilized intermediate structures that correspond to the introduction of one, two, or three peroxide moieties. Paradoxically, as the thermodynamic stability of the peroxide products increases along this reaction cascade, the kinetic barriers for their formation increase as well. This feature of the reaction potential energy surface, which allows separation of mono- and bis-peroxide tricyclic products, also explains why formation of the most stable tris-peroxide is the least kinetically viable and is not observed experimentally. Such unique behavior can be explained through the "inverse α-effect", a new stereoelectronic phenomenon with many conceptual implications for the development of organic functional group chemistry.
Found 
Found 

Top-30

Journals

1
2
3
Advanced Synthesis and Catalysis
3 publications, 10.71%
Journal of Organic Chemistry
3 publications, 10.71%
Chemical Society Reviews
2 publications, 7.14%
Journal of the American Chemical Society
2 publications, 7.14%
Mendeleev Communications
2 publications, 7.14%
Tetrahedron
1 publication, 3.57%
Pharmaceuticals
1 publication, 3.57%
Cell Reports Physical Science
1 publication, 3.57%
Chemistry - A European Journal
1 publication, 3.57%
Journal of Physical Chemistry Letters
1 publication, 3.57%
Journal of Physical Chemistry B
1 publication, 3.57%
Molecules
1 publication, 3.57%
Chemical Science
1 publication, 3.57%
Russian Journal of General Chemistry
1 publication, 3.57%
New Journal of Chemistry
1 publication, 3.57%
Russian Chemical Reviews
1 publication, 3.57%
Russian Chemical Bulletin
1 publication, 3.57%
ACS Catalysis
1 publication, 3.57%
Journal of Chemical Physics
1 publication, 3.57%
Structural Chemistry
1 publication, 3.57%
Crystal Growth and Design
1 publication, 3.57%
1
2
3

Publishers

1
2
3
4
5
6
7
8
9
American Chemical Society (ACS)
9 publications, 32.14%
Royal Society of Chemistry (RSC)
4 publications, 14.29%
Wiley
4 publications, 14.29%
Elsevier
2 publications, 7.14%
MDPI
2 publications, 7.14%
OOO Zhurnal "Mendeleevskie Soobshcheniya"
2 publications, 7.14%
Springer Nature
2 publications, 7.14%
Pleiades Publishing
1 publication, 3.57%
Autonomous Non-profit Organization Editorial Board of the journal Uspekhi Khimii
1 publication, 3.57%
AIP Publishing
1 publication, 3.57%
1
2
3
4
5
6
7
8
9
  • We do not take into account publications without a DOI.
  • Statistics recalculated weekly.

Are you a researcher?

Create a profile to get free access to personal recommendations for colleagues and new articles.
Metrics
29
Share
Cite this
GOST |
Cite this
GOST Copy
Yaremenko I. A. et al. How to Build Rigid Oxygen-Rich Tricyclic Heterocycles from Triketones and Hydrogen Peroxide: Control of Dynamic Covalent Chemistry with Inverse α-Effect. // Journal of the American Chemical Society. 2020. Vol. 142. No. 34. pp. 14588-14607.
GOST all authors (up to 50) Copy
Yaremenko I. A., Radulov P. S., Medvedev M. G., Krivoshchapov N. V., Belyakova Y. Yu., Korlyukov A., Ilovaisky A. I., Terent'ev A. O., Alabugin I. V. How to Build Rigid Oxygen-Rich Tricyclic Heterocycles from Triketones and Hydrogen Peroxide: Control of Dynamic Covalent Chemistry with Inverse α-Effect. // Journal of the American Chemical Society. 2020. Vol. 142. No. 34. pp. 14588-14607.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1021/jacs.0c06294
UR - https://doi.org/10.1021/jacs.0c06294
TI - How to Build Rigid Oxygen-Rich Tricyclic Heterocycles from Triketones and Hydrogen Peroxide: Control of Dynamic Covalent Chemistry with Inverse α-Effect.
T2 - Journal of the American Chemical Society
AU - Yaremenko, Ivan A
AU - Radulov, Peter S
AU - Medvedev, Michael G.
AU - Krivoshchapov, Nikolai V
AU - Belyakova, Yulia Yu
AU - Korlyukov, Alexander
AU - Ilovaisky, Alexey I
AU - Terent'ev, Alexander O.
AU - Alabugin, Igor V.
PY - 2020
DA - 2020/07/28
PB - American Chemical Society (ACS)
SP - 14588-14607
IS - 34
VL - 142
PMID - 32787239
SN - 0002-7863
SN - 1520-5126
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2020_Yaremenko,
author = {Ivan A Yaremenko and Peter S Radulov and Michael G. Medvedev and Nikolai V Krivoshchapov and Yulia Yu Belyakova and Alexander Korlyukov and Alexey I Ilovaisky and Alexander O. Terent'ev and Igor V. Alabugin},
title = {How to Build Rigid Oxygen-Rich Tricyclic Heterocycles from Triketones and Hydrogen Peroxide: Control of Dynamic Covalent Chemistry with Inverse α-Effect.},
journal = {Journal of the American Chemical Society},
year = {2020},
volume = {142},
publisher = {American Chemical Society (ACS)},
month = {jul},
url = {https://doi.org/10.1021/jacs.0c06294},
number = {34},
pages = {14588--14607},
doi = {10.1021/jacs.0c06294}
}
MLA
Cite this
MLA Copy
Yaremenko, Ivan A., et al. “How to Build Rigid Oxygen-Rich Tricyclic Heterocycles from Triketones and Hydrogen Peroxide: Control of Dynamic Covalent Chemistry with Inverse α-Effect..” Journal of the American Chemical Society, vol. 142, no. 34, Jul. 2020, pp. 14588-14607. https://doi.org/10.1021/jacs.0c06294.