Spontaneous Chemical Amine Oxidation in Organic Solvents Paired With Electrochemical Hydrogen Production

T Tzu‐Ting Weng (Graduate School of Advanced Technology National Taiwan University Taipei Taiwan) S Song‐Chi Chen (Graduate School of Advanced Technology National Taiwan University Taipei Taiwan) J Jing‐Mei Huang (Graduate School of Advanced Technology National Taiwan University Taipei Taiwan) J Jyh‐Pin Chou (Graduate School of Advanced Technology National Taiwan University Taipei Taiwan) Y Ying‐Rui Lu (National Synchrotron Radiation Research Center Hsinchu Taiwan) C Chih‐Jung Chen (Graduate School of Advanced Technology National Taiwan University Taipei Taiwan)

Abstract

ABSTRACT Benzonitrile (BN) is a versatile chemical building block extensively applied across multiple sectors. Electrochemical benzylamine oxidation reaction (BOR) provides a sustainable method for BN synthesis, simultaneously enabling H 2 fuel generation via hydrogen evolution reaction (HER). Alkaline electrolytes are commonly used to reduce the BOR overpotential but promote the hydrolytic decomposition of benzylimine intermediates and BN products, contributing to significant carbon loss. These side reactions become more pronounced under industrially relevant conditions (>50 mM). In this study, redox reservoirs (RRs) were employed to decouple BOR from HER, allowing their independent operation. Utilizing a highly positive formal potential, RRs facilitated spontaneous BOR in hexane, effectively circumventing hydrolysis issues and simplifying the product purification. Furthermore, NiOOH species within RRs functioned as reactive sites with strong affinity toward benzylamine (BA) and negligible self‐reduction, thereby achieving high BN yield and Faradaic efficiency even at BA concentrations exceeding 100 mM. To further demonstrate the versatility, BA derivatives bearing various functional groups were also tested, all of which were successfully converted into their corresponding nitriles. These results highlight the flexibility of RR system to accommodate diverse substrates and meet specific market demands.

Article Details

Volume / Issue Vol. 65, Issue 31
Published July 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

T

Tzu‐Ting Weng

Graduate School of Advanced Technology National Taiwan University Taipei Taiwan

S

Song‐Chi Chen

Graduate School of Advanced Technology National Taiwan University Taipei Taiwan

J

Jing‐Mei Huang

Graduate School of Advanced Technology National Taiwan University Taipei Taiwan

J

Jyh‐Pin Chou

Graduate School of Advanced Technology National Taiwan University Taipei Taiwan

Y

Ying‐Rui Lu

National Synchrotron Radiation Research Center Hsinchu Taiwan

C

Chih‐Jung Chen

Graduate School of Advanced Technology National Taiwan University Taipei Taiwan