Coordinative Stabilization of Single Bismuth Sites in a Carbon–Nitrogen Matrix to Generate Atom‐Efficient Catalysts for Electrochemical Nitrate Reduction to Ammonia

GND
1269984292
Affiliation
Key Laboratory of Advanced Fuel Cells and Electrolyzers Technology of Zhejiang Province Qianwan Institute of CNITECH Ningbo Institute of Materials Technology and Engineering Chinese Academy of Sciences Ningbo Zhejiang 315201 P. R. China
Zhang, Wuyong;
Affiliation
Department of Chemistry‐BMC Uppsala University BMC Box 576 Uppsala S‐751 23 Sweden
Zhan, Shaoqi;
Affiliation
Helmholtz‐Zentrum Berlin für Materialien und Energie GmbH Albert‐Einstein‐Straße 15 12489 Berlin Germany
Xiao, Jie;
Affiliation
Helmholtz‐Zentrum Berlin für Materialien und Energie GmbH Albert‐Einstein‐Straße 15 12489 Berlin Germany
Petit, Tristan;
Affiliation
Institute for Optics and Atomic Physics Technische Universität Berlin Hardenbergstr. 36 10623 Berlin Germany
Schlesiger, Christopher;
Affiliation
Surface Science Laboratory Department of Materials and Earth Sciences Technical University of Darmstadt Otto‐Berndt‐Straße 3 64287 Darmstadt Germany
Mellin, Maximilian;
Affiliation
Surface Science Laboratory Department of Materials and Earth Sciences Technical University of Darmstadt Otto‐Berndt‐Straße 3 64287 Darmstadt Germany
Hofmann, Jan P.;
Affiliation
Max Planck Institute of Colloids and Interfaces Department of Colloid Chemistry Am Mühlenberg 1 14476 Potsdam Germany
Heil, Tobias;
Affiliation
Institute of Analytical and Bioanalytical Chemistry Ulm University Albert‐Einstein‐Allee 11 89081 Ulm Germany
Müller, Riccarda;
Affiliation
Institute of Analytical and Bioanalytical Chemistry Ulm University Albert‐Einstein‐Allee 11 89081 Ulm Germany
Leopold, Kerstin;
GND
1070230448
ORCID
0000-0003-2377-1214
Affiliation
Center for Energy and Environmental Chemistry Jena (CEEC Jena) Institute for Technical Chemistry and Environmental Chemistry Friedrich‐Schiller‐University Jena Philosophenweg 7a 07743 Jena Germany
Oschatz, Martin

Abstract Electrochemical nitrate reduction to ammonia powered by renewable electricity is not only a promising alternative to the established energy‐intense and non‐ecofriendly Haber–Bosch reaction for ammonia generation but also a future contributor to the ever‐more important denitrification schemes. Nevertheless, this reaction is still impeded by the lack of understanding for the underlying reaction mechanism on the molecular scale which is necessary for the rational design of active, selective, and stable electrocatalysts. Herein, a novel single‐site bismuth catalyst (Bi‐N‐C) for nitrate electroreduction is reported to produce ammonia with maximum Faradaic efficiency of 88.7% and at a high rate of 1.38 mg h −1 mg cat −1 at −0.35 V versus reversible hydrogen electrode (RHE). The active center (described as BiN 2 C 2 ) is uncovered by detailed structural analysis. Coupled density functional theory calculations are applied to analyze the reaction mechanism and potential rate‐limiting steps for nitrate reduction based on the BiN 2 C 2 model. The findings highlight the importance of model catalysts to utilize the potential of nitrate reduction as a new‐generation nitrogen‐management technology based on the construction of efficient active sites.

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