Unveiling a proton-coupled electron-transfer mechanistic library of nitrate to ammonia via ultramicroelectrode-hyphenated mass spectrometry
Abstract
For valuable ammonia synthesis and green nitrogen recycling, electrocatalytic nitrate reduction reaction (NO 3 RR) presents a sustainable alternative to the conventional Haber–Bosch process. The NO 3 RR involves intricate, multi-step proton-coupled electron transfers (PCET) featuring multiple nitrogen-oxygen intermediates and reaction branches. Unveiling this complex reaction library is crucial for rational tailoring of NO 3 RR for improved practical application, yet it remains a formidable challenge. Herein we present an in situ ultramicroelectrode-hyphenated mass spectrometry technique to systematically investigate the dynamic electrocatalytic NO 3 RR, using a cobalt-based molecular catalyst as a model system, and to decipher its mechanistic library under complex reaction environments (potential- and pH-dependent). Several key short-lived CoNO x H y intermediates were directly tracked and identified, experimentally revealing that the overall catalytic pathway of NO 3 RR proceeds through the intermediary [LCo-NO 3 ]→[LCo-NO 3 H] + →[LCo-NO 2 ] + → [LCo-NO 2 H] + → [LCo-NO] + → [LCo-NHOH] + → [LCo-NH] + to produce NH 3 , which were further validated by isotopic 15 N-labeling and collision-induced dissociation experiments. Combining theoretical simulations, a complete PCET-based mechanistic pathway was elucidated and distinguished from competing hydrogenation–deoxygenation mechanisms. Notably, a systematically interconnected electrochemical mechanistic library for NO 3 RR, visualized through heat maps, was constructed to illustrate intermediate selectivity across a broad potential-pH space. This platform underscores the promising potential of navigating the pathway prediction and regulation of complex reaction environments, thereby advancing the mechanistic understanding of NO 3 RR and other complicated electrocatalytic processes.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (8)
Xiang Zhao
Chaoyue Gu
Department of Chemistry, Capital Normal University
Junjie Liu
Institute of Molecular Physiology
Bingjie Kong
Department of Chemistry, Capital Normal University
Sen Liang
State Key Laboratory of Biopharmaceutical Preparation and Delivery, Institute of Process Engineering, Chinese Academy of Sciences
Yang Tian
Shanghai Key Laboratory of Green Chemistry and Chemical Processes, School of Chemistry and Molecular Engineering, East China Normal University, Dongchuan Road 500, Shanghai 200241, China
Hongbing Fu
Beijing Key Laboratory for Optical Materials and Photonic Devices, Department of Chemistry
Yuanhua Shao
Beijing National Laboratory for Molecular Sciences, College of Chemistry and Molecular Engineering, Peking University