Rapid Aryne-Enabled Aryl Functionalization via Mechanically Assisted Microscale Mixing

Abstract Herein, we demonstrate that arynes can be generated and trapped efficiently through mechanically assisted microscale mixing on a standard vortex mixer. Brief vortex agitation enables ultra-fast generation and interception of these highly reactive intermediates with N-, O-, S-, and C-nucleophiles within 1 min, therefore providing a low-energy-solvent minimized approach for aryl functionalization without the need for inert atmosphere, heating, or bulk solvent.

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Publication Details

Journal
ACS Omega
Published
2026-09-30
DOI
https://doi.org/10.1021/acsomega.6c09456
Primary Topic
Cyclization and Aryne Chemistry
Type
article
Field-Weighted Citation Impact
0.00
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article

Rapid Aryne-Enabled Aryl Functionalization via Mechanically Assisted Microscale Mixing

Maximilian Kaiser, Michael Schnürch, Johanna Breinsperger
ACS Omega
Cyclization and Aryne Chemistry
article

Rapid Aryne-Enabled Aryl Functionalization via Mechanically Assisted Microscale Mixing

Maximilian Kaiser, Michael Schnürch, Johanna Breinsperger
article en

Abstract

Abstract Herein, we demonstrate that arynes can be generated and trapped efficiently through mechanically assisted microscale mixing on a standard vortex mixer. Brief vortex agitation enables ultra-fast generation and interception of these highly reactive intermediates with N-, O-, S-, and C-nucleophiles within 1 min, therefore providing a low-energy-solvent minimized approach for aryl functionalization without the need for inert atmosphere, heating, or bulk solvent.

ACS Omega
TU Wien (AT)
Affordable and clean energy
Openalex Percentile: Top 23%
Cyclization and Aryne Chemistry
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