Promoting N−N Bond Formation of Ammonia Oxidation by a Dangling Carboxylate Proton Relay

Abstract Inspired by enzymatic proton-coupled electron transfer (PCET) control, introducing proton relays into catalysts' second coordination sphere accelerates proton-transfer reactions, yet this strategy remains underexplored for the catalysis of ammonia oxidation reaction (AOR). Here, we report ammonia oxidation catalyzed by [Ru(pdc-κ-N1O1)(tpy)(NH3)] (Ru(pdc-t)(NH3); H2pdc = 2, 6-pyridinedicarboxylic acid; tpy = terpyridine), featuring a pendant carboxylate group, and its structural analog [Ru(pic)(tpy)(NH3)](PF6) (Ru(pic-t)(NH3); Hpic = picolinic acid). Such a structural design creates a dangling carboxylate group as a proton relay, assisting the proton transfer during N−N bond formation. Ru(pdc-t)(NH3) exhibits improved AOR performance relative to Ru(pic-t)(NH3) and previously reported [Ru(pdc-κ-N1O2)(bpy)(NH3)] (Ru(pdc-b)(NH3); bpy = bipyridine), with a catalytic rate of 209.7 ± 12.2 s−1 (11.1-fold increase) and a turnover number of 319 for N2 (4.2-fold increase). The calculated barrier for N−N bond formation for Ru(pdc-t)(NH3) is +0.8 kcal/mol, which is significantly lower than the +7.8 kcal/mol barrier for Ru(pic-t)(NH3). This work demonstrates the promotional effect of a proton relay on the catalytic oxidation of ammonia to N2.

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Publication Details

Journal
ACS Catalysis
Published
2026-09-10
DOI
https://doi.org/10.1021/acscatal.6c04736
Primary Topic
Ammonia Synthesis and Nitrogen Reduction
Type
article
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article

Promoting N−N Bond Formation of Ammonia Oxidation by a Dangling Carboxylate Proton Relay

Rong‐Zhen Liao, Licheng Sun, Xiaohuo Shi, Biaobiao Zhang et al.
ACS Catalysis
Ammonia Synthesis and Nitrogen Reduction
article

Promoting N−N Bond Formation of Ammonia Oxidation by a Dangling Carboxylate Proton Relay

Rong‐Zhen Liao, Licheng Sun, Xiaohuo Shi, Biaobiao Zhang, Jinli Chen, Huatian Xiong, Yuanyuan Cai, Feiyang Zhang, Jun Li
article en

Abstract

Abstract Inspired by enzymatic proton-coupled electron transfer (PCET) control, introducing proton relays into catalysts' second coordination sphere accelerates proton-transfer reactions, yet this strategy remains underexplored for the catalysis of ammonia oxidation reaction (AOR). Here, we report ammonia oxidation catalyzed by [Ru(pdc-κ-N1O1)(tpy)(NH3)] (Ru(pdc-t)(NH3); H2pdc = 2, 6-pyridinedicarboxylic acid; tpy = terpyridine), featuring a pendant carboxylate group, and its structural analog [Ru(pic)(tpy)(NH3)](PF6) (Ru(pic-t)(NH3); Hpic = picolinic acid). Such a structural design creates a dangling carboxylate group as a proton relay, assisting the proton transfer during N−N bond formation. Ru(pdc-t)(NH3) exhibits improved AOR performance relative to Ru(pic-t)(NH3) and previously reported [Ru(pdc-κ-N1O2)(bpy)(NH3)] (Ru(pdc-b)(NH3); bpy = bipyridine), with a catalytic rate of 209.7 ± 12.2 s−1 (11.1-fold increase) and a turnover number of 319 for N2 (4.2-fold increase). The calculated barrier for N−N bond formation for Ru(pdc-t)(NH3) is +0.8 kcal/mol, which is significantly lower than the +7.8 kcal/mol barrier for Ru(pic-t)(NH3). This work demonstrates the promotional effect of a proton relay on the catalytic oxidation of ammonia to N2.

ACS Catalysis
Westlake University (CN), Westlake Health Center (US), Baogang Group (China) (CN), Huazhong University of Science and Technology Hospital (CN), Huazhong University of Science and Technology (CN)
Openalex Percentile: Top 30%
Ammonia Synthesis and Nitrogen Reduction
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