van Beek Cody B, van Leest Nicolaas P, Lutz Martin, de Vos Sander D, Klein Gebbink Robertus J M, de Bruin Bas, Broere Daniël L J
Organic Chemistry and Catalysis, Debye Institute for Nanomaterials Science, Faculty of Science, Utrecht University Universiteitsweg 99 3584 CG Utrecht The Netherlands
Homogeneous, Supramolecular and Bio-Inspired Catalysis Group, Van 't Hoff Institute for Molecular Sciences, University of Amsterdam Science Park 904 1098 XH Amsterdam The Netherlands.
Chem Sci. 2022 Jan 18;13(7):2094-2104. doi: 10.1039/d1sc05473b. eCollection 2022 Feb 16.
Several metalloenzymes, including [FeFe]-hydrogenase, employ cofactors wherein multiple metal atoms work together with surrounding ligands that mediate heterolytic and concerted proton-electron transfer (CPET) bond activation steps. Herein, we report a new dinucleating PNNP expanded pincer ligand, which can bind two low-valent iron atoms in close proximity to enable metal-metal cooperativity (MMC). In addition, reversible partial dearomatization of the ligand's naphthyridine core enables both heterolytic metal-ligand cooperativity (MLC) and chemical non-innocence through CPET steps. Thermochemical and computational studies show how a change in ligand binding mode can lower the bond dissociation free energy of ligand C(sp)-H bonds by ∼25 kcal mol. H-atom abstraction enabled trapping of an unstable intermediate, which undergoes facile loss of two carbonyl ligands to form an unusual paramagnetic ( = ) complex containing a mixed-valent iron(0)-iron(i) core bound within a partially dearomatized PNNP ligand. Finally, cyclic voltammetry experiments showed that these diiron complexes show catalytic activity for the electrochemical hydrogen evolution reaction. This work presents the first example of a ligand system that enables MMC, heterolytic MLC and chemical non-innocence, thereby providing important insights and opportunities for the development of bimetallic systems that exploit these features to enable new (catalytic) reactivity.
包括[FeFe]-氢化酶在内的几种金属酶使用辅因子,其中多个金属原子与周围的配体协同作用,介导异裂和协同质子-电子转移(CPET)键活化步骤。在此,我们报道了一种新的双齿PNNP扩展钳形配体,它可以紧密结合两个低价铁原子以实现金属-金属协同作用(MMC)。此外,配体萘啶核心的可逆部分去芳构化通过CPET步骤实现了异裂金属-配体协同作用(MLC)和化学非无害性。热化学和计算研究表明,配体结合模式的改变如何能使配体C(sp)-H键的键解离自由能降低约25 kcal/mol。氢原子提取使得能够捕获一个不稳定的中间体,该中间体容易失去两个羰基配体,形成一种不寻常的顺磁性(=)配合物,其包含一个混合价铁(0)-铁(i)核心,该核心结合在一个部分去芳构化的PNNP配体中。最后,循环伏安法实验表明,这些双铁配合物对电化学析氢反应具有催化活性。这项工作展示了一种配体系统的首个实例,该系统能够实现MMC、异裂MLC和化学非无害性,从而为开发利用这些特性实现新的(催化)反应性的双金属系统提供了重要的见解和机会。