Organocatalytic Microfluidic Double‐Layer Capacitors

S Shen‐Yi Guo (Department of Organic Chemistry University of Geneva Geneva Switzerland) M Miguel Paraja (Department of Organic Chemistry University of Geneva Geneva Switzerland) A Augustina Jozeliūnaitė (Department of Organic Chemistry University of Geneva Geneva Switzerland) M Manuel Gallardo‐Villagrán (Department of Organic Chemistry University of Geneva Geneva Switzerland) Q Qing‐Xia Zhang (Department of Organic Chemistry University of Geneva Geneva Switzerland) A Alenka Marsalek (Department of Organic Chemistry University of Geneva Geneva Switzerland) N Naomi Sakai (Department of Organic Chemistry University of Geneva Geneva Switzerland) S Stefan Matile (Department of Organic Chemistry University of Geneva Geneva Switzerland)

Abstract

Abstract Ideas to use external electric fields to enable, accelerate and direct the movement of electrons during chemical reactions are not new. Theory and experiments under special conditions predict that electric‐field catalysis (EFC) from externally applied fields could change the way we make molecules. The challenge is the incompatibility with organic synthesis under scalable bulk conditions. Access to applied electric fields (AEFs) > 1 V nm −1 , predicted as necessary for direct transition‐state stabilization, is not possible even with electromicrofluidic systems, where the distance between the plate electrodes is minimized. Therefore, we decided to shift our attention from the applied fields to their consequences. We consider electrical double layers (EDLs) that form within a few nanometers from the plate electrodes as engineerable supramolecular electrodes. Applying lessons from cell‐penetrating peptides (CPPs), we report supramolecular electrodes with effective electric fields (EEFs) that exceed applied fields by more than five million. According to a proline‐catalyzed aldol condensation installed as benchmark reaction, those engineered from polyarginine and pyrenebutyrate are most active for EFC, exactly as in cellular uptake. With the best supramolecular electrodes, EFC triples the yield of one of the most optimized reactions in organocatalysis. New methods to access scalable EFC open up broad perspectives in organic synthesis and beyond.

Article Details

Volume / Issue Vol. 64, Issue 45
Published November 03, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

S

Shen‐Yi Guo

Department of Organic Chemistry University of Geneva Geneva Switzerland

M

Miguel Paraja

Department of Organic Chemistry University of Geneva Geneva Switzerland

A

Augustina Jozeliūnaitė

Department of Organic Chemistry University of Geneva Geneva Switzerland

M

Manuel Gallardo‐Villagrán

Department of Organic Chemistry University of Geneva Geneva Switzerland

Q

Qing‐Xia Zhang

Department of Organic Chemistry University of Geneva Geneva Switzerland

A

Alenka Marsalek

Department of Organic Chemistry University of Geneva Geneva Switzerland

N

Naomi Sakai

Department of Organic Chemistry University of Geneva Geneva Switzerland

S

Stefan Matile

Department of Organic Chemistry University of Geneva Geneva Switzerland