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Scalable and Sustainable Electrochemical Allylic C–H Oxidation
New methods and strategies for the direct functionalization of C–H bonds are beginning to reshape the fabric of retrosynthetic analysis, impacting the synthesis of natural products, medicines, and even materials(1). The oxidation of allylic systems has played a prominent role in this context as poss...
Autores principales: | , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
2016
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4860034/ https://www.ncbi.nlm.nih.gov/pubmed/27096371 http://dx.doi.org/10.1038/nature17431 |
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author | Horn, Evan J. Rosen, Brandon R. Chen, Yong Tang, Jiaze Chen, Ke Eastgate, Martin D. Baran, Phil S. |
author_facet | Horn, Evan J. Rosen, Brandon R. Chen, Yong Tang, Jiaze Chen, Ke Eastgate, Martin D. Baran, Phil S. |
author_sort | Horn, Evan J. |
collection | PubMed |
description | New methods and strategies for the direct functionalization of C–H bonds are beginning to reshape the fabric of retrosynthetic analysis, impacting the synthesis of natural products, medicines, and even materials(1). The oxidation of allylic systems has played a prominent role in this context as possibly the most widely applied C–H functionalization due to the utility of enones and allylic alcohols as versatile intermediates, along with their prevalence in natural and unnatural materials(2). Allylic oxidations have been featured in hundreds of syntheses, including some natural product syntheses regarded as “classics”(3). Despite many attempts to improve the efficiency and practicality of this powerful transformation, the vast majority of conditions still employ highly toxic reagents (based around toxic elements such as chromium, selenium, etc.) or expensive catalysts (palladium, rhodium, etc.)(2). These requirements are highly problematic in industrial settings; currently, no scalable and sustainable solution to allylic oxidation exists. As such, this oxidation strategy is rarely embraced for large-scale synthetic applications, limiting the adoption of this important retrosynthetic strategy by industrial scientists. In this manuscript, we describe an electrochemical solution to this problem that exhibits broad substrate scope, operational simplicity, and high chemoselectivity. This method employs inexpensive and readily available materials, representing the first example of a scalable allylic C–H oxidation (demonstrated on 100 grams), finally opening the door for the adoption of this C–H oxidation strategy in large-scale industrial settings without significant environmental impact. |
format | Online Article Text |
id | pubmed-4860034 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2016 |
record_format | MEDLINE/PubMed |
spelling | pubmed-48600342016-10-20 Scalable and Sustainable Electrochemical Allylic C–H Oxidation Horn, Evan J. Rosen, Brandon R. Chen, Yong Tang, Jiaze Chen, Ke Eastgate, Martin D. Baran, Phil S. Nature Article New methods and strategies for the direct functionalization of C–H bonds are beginning to reshape the fabric of retrosynthetic analysis, impacting the synthesis of natural products, medicines, and even materials(1). The oxidation of allylic systems has played a prominent role in this context as possibly the most widely applied C–H functionalization due to the utility of enones and allylic alcohols as versatile intermediates, along with their prevalence in natural and unnatural materials(2). Allylic oxidations have been featured in hundreds of syntheses, including some natural product syntheses regarded as “classics”(3). Despite many attempts to improve the efficiency and practicality of this powerful transformation, the vast majority of conditions still employ highly toxic reagents (based around toxic elements such as chromium, selenium, etc.) or expensive catalysts (palladium, rhodium, etc.)(2). These requirements are highly problematic in industrial settings; currently, no scalable and sustainable solution to allylic oxidation exists. As such, this oxidation strategy is rarely embraced for large-scale synthetic applications, limiting the adoption of this important retrosynthetic strategy by industrial scientists. In this manuscript, we describe an electrochemical solution to this problem that exhibits broad substrate scope, operational simplicity, and high chemoselectivity. This method employs inexpensive and readily available materials, representing the first example of a scalable allylic C–H oxidation (demonstrated on 100 grams), finally opening the door for the adoption of this C–H oxidation strategy in large-scale industrial settings without significant environmental impact. 2016-04-20 2016-05-05 /pmc/articles/PMC4860034/ /pubmed/27096371 http://dx.doi.org/10.1038/nature17431 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms |
spellingShingle | Article Horn, Evan J. Rosen, Brandon R. Chen, Yong Tang, Jiaze Chen, Ke Eastgate, Martin D. Baran, Phil S. Scalable and Sustainable Electrochemical Allylic C–H Oxidation |
title | Scalable and Sustainable Electrochemical Allylic C–H Oxidation |
title_full | Scalable and Sustainable Electrochemical Allylic C–H Oxidation |
title_fullStr | Scalable and Sustainable Electrochemical Allylic C–H Oxidation |
title_full_unstemmed | Scalable and Sustainable Electrochemical Allylic C–H Oxidation |
title_short | Scalable and Sustainable Electrochemical Allylic C–H Oxidation |
title_sort | scalable and sustainable electrochemical allylic c–h oxidation |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4860034/ https://www.ncbi.nlm.nih.gov/pubmed/27096371 http://dx.doi.org/10.1038/nature17431 |
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