Mechanistic Insight into the Dehydro-Diels–Alder Reaction of Styrene–Ynes

2015 ◽  
Vol 80 (23) ◽  
pp. 11686-11698 ◽  
Author(s):  
Laura S. Kocsis ◽  
Husain N. Kagalwala ◽  
Sharlene Mutto ◽  
Bhaskar Godugu ◽  
Stefan Bernhard ◽  
...  
2016 ◽  
Vol 11 (23) ◽  
pp. 3297-3304 ◽  
Author(s):  
Israel Fernández ◽  
F. Matthias Bickelhaupt

2013 ◽  
Vol 78 (8) ◽  
pp. 3577-3582 ◽  
Author(s):  
Lina Xu ◽  
Weijie Hua ◽  
Shugui Hua ◽  
Jun Li ◽  
Shuhua Li

Nature ◽  
2003 ◽  
Vol 422 (6928) ◽  
pp. 185-189 ◽  
Author(s):  
Toyoyuki Ose ◽  
Kenji Watanabe ◽  
Takashi Mie ◽  
Mamoru Honma ◽  
Hiromi Watanabe ◽  
...  

Synlett ◽  
2019 ◽  
Vol 31 (04) ◽  
pp. 301-308
Author(s):  
Jun Deng ◽  
Xianwen Long ◽  
Yiming Ding ◽  
Hai Wu

Here we briefly reviewed recent synthetic progress toward cytochalasan trimer, asperchalasine A by Tang, Trauner and our group. This process features a highly stereoselective intermolecular Diels–Alder reaction and a HWE or RCM macrocyclization to establish the key monomer aspochalasin B. A late-stage biomimetic oxidative dearomatization of triphenol and subsequent [5+2] cycloaddition cascade furnished asperchalasine A. We anticipate that this key reaction could also be used for the synthesis of other merocytochalasans, and provide some insight into the biosynthetic connections of merocytochalasans. 1 Introduction2 Total Synthesis of Aspochalasin B 3 Total Synthesis of Asperchalasine A 4 Conclusions


Author(s):  
Haydar A. Mohammad-Salim

Theoretical modeling of organic synthesis is a powerful tool and leads to further insight into chemical systems. Computational chemistry allows obtaining the potential energy surface that experimentally cannot be observed, in addition to transition state calculations, which lead to better understanding the reactivity of an organic synthesis work. The Diels-Alder (DA) reaction of cyclopentadiene 1 and N-phenylmaleimide 2 has been studied at the MP2/6-311++G(d,p) level of theory. This DA reaction occurs through a one-step mechanism. It was expected that this reaction undergoes two regio-isomeric reaction paths passing through two different transition states to form two different products 3  and 4. The reaction paths are irreversible due to the exothermic character of -41.24 and -41.73 kcal.mol-1. This DA reaction are exergonic with reactions Gibbs free energies between -27.26 and -27.74 kcal⋅mol−1. Analysis of the CDFT indices predict the global electronic flux from the strong nucleophilic cyclopentadiene 1 to the electrophilic N-phenylmaleimide 2.


2014 ◽  
Vol 20 (8) ◽  
Author(s):  
Moyocoyani Molina-Espíritu ◽  
Rodolfo O. Esquivel ◽  
Miroslav Kohout ◽  
Juan Carlos Angulo ◽  
José A. Dobado ◽  
...  

Synlett ◽  
1989 ◽  
Vol 1989 (01) ◽  
pp. 30-32
Author(s):  
Thomas V. Lee ◽  
Alistair J. Leigh ◽  
Christopher B. Chapleo

2020 ◽  
Author(s):  
Radu Talmazan ◽  
Klaus R. Liedl ◽  
Bernhard Kräutler ◽  
Maren Podewitz

We analyze the mechanism of the topochemically controlled difunctionalization of C60 and anthracene, where an anthracene molecule is transferred from one C60 monoadduct to another one under exclusive formation of equal amounts of C60 and the difficult to make antipodal C60 bisadduct. Our herein disclosed dispersion corrected DFT studies show the anthracene transfer to take place in a synchronous retro Diels-Alder/Diels-Alder reaction: an anthracene molecule dissociates from one fullerene under formation of an intermediate, while already undergoing stabilizing interactions with both neighboring fullerenes, facilitating the reaction kinetically. In the intermediate, a planar anthracene molecule is sandwiched between two neighboring fullerenes and forms equally strong "double-decker" type pi-pi stacking interactions with both of these fullerenes. Analysis with the distorsion interaction model shows that the anthracene unit of the intermediate is almost planar with minimal distorsions. This analysis sheds light on the existence of noncovalent interactions engaging both faces of a planar polyunsaturated ring and two convex fullerene surfaces in an unprecedented 'inverted sandwich' structure. Hence, it sheds light on new strategies to design functional fullerene based materials.<br>


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