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Polarized Metal Nitride Solid Solutions as Electrocatalysts Enabling Ampere-Level Selective Formic Acid Synthesis
Zheng Dai1, Haoran Zhao1, Qiang Li2
1School of Environmental Science and Technology, Dalian University of Technology, No.2 Linggong Road, Ganjingzi District, Dalian116024, China.
A novel single-phase NiCoN catalyst efficiently synthesizes formic acid (FA) from biomass electrooxidation. This durable catalyst offers high FA selectivity and long-term stability in anion-exchange membrane electrolyzers.
Area of Science:
- Materials Science
- Electrochemistry
- Catalysis
Background:
- Formic acid (FA) is a valuable product from biomass electrooxidation, serving as a fuel and hydrogen carrier.
- Efficient industrial-scale synthesis of FA with stable hydrogen evolution remains a significant challenge.
Purpose of the Study:
- To develop a novel catalyst for efficient and selective formic acid synthesis via biomass electrooxidation.
- To investigate the role of atomic-level structural modifications in enhancing catalytic activity and stability.
Main Methods:
- Synthesis of a single-phase NiCoN solid-solution metal nitride catalyst.
- Characterization of the catalyst's structure and electronic properties.
- Electrochemical testing in an anion-exchange membrane (AEM) electrolyzer using glycerol as a co-reactant.
Main Results:
- The NiCoN catalyst, with atomic-level Co incorporation, created polarized active sites and optimized intermediate adsorption.
- This led to accelerated dehydrogenation kinetics and lower C-C bond cleavage energy barriers, favoring FA production.
- Achieved 97.2% FA Faradaic efficiency and over 3,600 hours of stable operation at 1 A cm-2.
Conclusions:
- Atomic-scale solid-solution engineering in NiCoN catalysts effectively regulates catalytic pathways for selective FA synthesis.
- The developed catalyst demonstrates exceptional long-term interfacial stability for biomass electrochemical conversion.
- This approach provides a promising strategy for advancing sustainable formic acid production.
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