Rapid and selective formic acid dehydrogenation catalysis by molecular ruthenium hydrides supported by rigid PCcarbeneP pincer ligands†

IF 4.2 3区 化学 Q2 CHEMISTRY, PHYSICAL Catalysis Science & Technology Pub Date : 2024-11-07 Epub Date: 2024-11-27 DOI:10.1039/d4cy01346h
Laurie J. Donnelly , Benjamin S. Gelfand , Warren E. Piers
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Abstract

A series of four molecular ruthenium hydrido complexes supported by previously reported rigid PCcarbeneP pincer ligand frameworks were evaluated as formic acid dehydrogenation (FAD) catalysts. The ligands in the complexes LRRu(H)X (R = H, NMe2; X = Cl, κ2-O2CH) differ in the electron richness by substitution on the aryl groups linking the di-iso-propylphosphine arms to the central carbene donor. We find that only the unsubstituted (R = H) chloro and formato complexes are effective catalyst precursors; the NMe2 substituted derivatives decompose under catalytic conditions. However, the two compounds LHRu(H)X are highly active (TOF = 1300–4200 h−1), long lived (TON up to 122 000) and selective (dihydrogen and carbon dioxide are the sole products) at 21 °C with no base additives necessary in 13 M formic acid in water/dioxane. These performance metrics compare well with state of the art catalysts operating under ambient conditions. Mechanistic experiments support a simple two-step mechanism involving rate limiting protonolysis of the Ru–H by formic acid to release H2 and rapid loss of CO2via β-elimination from the resulting formato complex.

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刚性PCcarbeneP钳形配体支持的分子氢化钌快速选择性催化甲酸脱氢
研究了一系列四分子钌氢化配合物作为甲酸脱氢(FAD)催化剂,这些络合物由先前报道的刚性PCcarbeneP钳形配体框架支撑。配合物LRRu(H)X (R = H, NMe2;X = Cl, κ2-O2CH)通过取代连接二异丙基膦臂与中心碳供体的芳基而使电子丰富度不同。我们发现只有未取代的(R = H)氯和甲酸配合物是有效的催化剂前体;NMe2取代衍生物在催化条件下分解。然而,这两种化合物LHRu(H)X在21°C时具有高活性(TOF = 1300-4200 H−1),长寿命(TOF高达122000)和选择性(唯一的产物是二氢和二氧化碳),不需要在13 M甲酸水/二氧六环中添加碱添加剂。这些性能指标与在环境条件下运行的最先进的催化剂相比较。机理实验支持一个简单的两步机制,即甲酸对Ru-H的限速质子裂解释放H2,并通过β-消除生成的甲酸络合物快速损失co2。
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来源期刊
Catalysis Science & Technology
Catalysis Science & Technology CHEMISTRY, PHYSICAL-
CiteScore
8.70
自引率
6.00%
发文量
587
审稿时长
1.5 months
期刊介绍: A multidisciplinary journal focusing on cutting edge research across all fundamental science and technological aspects of catalysis. Editor-in-chief: Bert Weckhuysen Impact factor: 5.0 Time to first decision (peer reviewed only): 31 days
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