Snyder, S. A.: 2016 Science of Synthesis, 2015/4b: Applications of Domino Transformations in Organic Synthesis 2 DOI: 10.1055/sos-SD-220-00070
Applications of Domino Transformations in Organic Synthesis 2

2.1.3 Domino Transformations Involving an Electrocyclization Reaction

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Buch

Herausgeber: Snyder, S. A.

Autoren: Bella, M.; Blond, G.; Boyce, J.; Coldham, I.; Dömling, A.; Donnard, M.; Guerrero, C.; Gulea, M.; Kroon, E.; Moliterno, M.; Neochoritis, C.; Novikov, A.; Porco Jr., J. A.; Renzi, P.; Salvio, R.; Schaumann, E.; Sheikh, N. S.; Song, A.; Sorensen, E. J.; Suffert, J.; Tzitzikas, T.; Wang, W.; West, J.; Yeung, Y.-Y.; Yu, Z. W.; Zakarian, A.

Titel: Applications of Domino Transformations in Organic Synthesis 2

Print ISBN: 9783132211414; Online ISBN: 9783132402218; Buch-DOI: 10.1055/b-003-128260

Fachgebiete: Organische Chemie;Chemische Reaktionen, Katalyse;Organometallchemie;Chemische Labormethoden, Stöchiometrie

Science of Synthesis Reference Libraries



Übergeordnete Publikation

Titel: Science of Synthesis

DOI: 10.1055/b-00000101

Reihenherausgeber: Carreira, E. M.; Decicco, C. P.; Fürstner, A.; Koch, G.; Molander, G.; Schaumann, E.; Shibasaki, M.; Thomas, E. J.; Trost, B. M.

Typ: Mehrbändiges Werk

 


Abstract

Electrocyclization processes represent a powerful and efficient way to produce carbo- or heterocycles stereoselectively. Moreover, when electrocyclizations are involved in domino processes, the overall transformation becomes highly atom and step economic, enabling access to structurally complex molecules. This chapter is devoted to significant contributions published in the last 15 years, focusing on synthetic methodologies using electrocyclization as a key step in a domino process.

 
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