化学
脱氢
钳子运动
甲酸
催化作用
基质(水族馆)
药物化学
有机化学
海洋学
地质学
作者
Manjaly J. Ajitha,Kuo‐Wei Huang
出处
期刊:Organometallics
[American Chemical Society]
日期:2025-08-25
卷期号:44 (18): 2099-2106
被引量:3
标识
DOI:10.1021/acs.organomet.5c00244
摘要
Metal–ligand cooperation (MLC) plays a crucial role in catalysis by enabling substrate activation through coordinated interactions between the metal center and ligand framework. To elucidate the mechanism for the PN 3 P–Ru-pincer complex catalyzed formic acid (HCOOH) dehydrogenation (FADH) reaction, pseudo -dearomatization and non-dearomatization pathways were investigated. HCOOH acidity is a key determinant with acid–base interactions favoring a non-dearomatization pathway. The base, triethylamine (Et 3 N), facilitates the formate ion generation, followed by the catalyst activation. Stability analysis indicates that the five-coordinated Ru species with a Cl – counterion is the most stable form in solution compared to its six-coordinated species. Under FADH conditions, decarboxylation is identified as the rate-determining step (RDS), consistent with experimental kinetic isotope effect (KIE) observations. Although the dearomatized PN 3 P–Ru pincer complex can be synthesized under basic conditions without HCOOH, it rapidly rearomatizes in the presence of HCOOH and remains in its aromatic form throughout the catalytic cycle. Our findings suggest that dearomatization/rearomatization may not be essential for these pincer systems. These insights refine our understanding of the aromatization/dearomatization-based MLC in homogeneous FADH reactions catalyzed by the PN 3 P–Ru pincer complexes and provide guiding principles for the development of next-generation catalysts for energy-related transformations.
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