» Articles » PMID: 39450764

Redox-Neutral, Iron-Mediated Directed C-H Activation: General Principles and Mechanistic Insights

Overview
Journal J Am Chem Soc
Specialty Chemistry
Date 2024 Oct 25
PMID 39450764
Authors
Affiliations
Soon will be listed here.
Abstract

Experimental and computational studies have been conducted and established the general principles for enabling redox-neutral C-H activation by iron(II) complexes. The idealized octahedral iron(II) dimethyl complex, (depe)Fe(CH) (depe = 1,2-bis(diethylphosphino)ethane) promoted the directed, regioselective C(sp)-H methylation of pivalophenone. The rate of the iron(II)-mediated C(sp)-H functionalization depended on the lability of L-type phosphine ligands, the spin state of the iron center, and the size of the X-type ligands (halide, hydrocarbyl) in PFeX complexes. The C(sp)-H alkylation reaction proved general among multiple substrates with directing groups including carbonyl, imines and pyridines. Among these, ketones and aldehydes were identified as optimal and were compatible with various steric environments and presence of acidic α-hydrogens. With stronger nitrogen donors, higher barriers for product-forming reductive elimination were observed. The effect of orbital hybridization on the chemoselectivity of C-H activation through a σ-CAM pathway by transition metals was also established by studying the stoichiometric reactivity of the differentially substituted (depe)Fe(Me)R complexes (R = alkyl, aryl), where the Fe-R bond with greater -character preferentially promoted selective C-H activation. Deuterium labeling and kinetic studies, coupled with computational analysis, supported a pathway involving phosphine dissociation and rate-determining C-H bond activation, leading to the observed products.

References
1.
Poulos T . Heme enzyme structure and function. Chem Rev. 2014; 114(7):3919-62. PMC: 3981943. DOI: 10.1021/cr400415k. View

2.
Jensen K, Cirera J . Accurate computed enthalpies of spin crossover in iron and cobalt complexes. J Phys Chem A. 2009; 113(37):10033-9. DOI: 10.1021/jp900654j. View

3.
Shang R, Ilies L, Nakamura E . Iron-Catalyzed C-H Bond Activation. Chem Rev. 2017; 117(13):9086-9139. DOI: 10.1021/acs.chemrev.6b00772. View

4.
Zhu C, Stangier M, Oliveira J, Massignan L, Ackermann L . Iron-Electrocatalyzed C-H Arylations: Mechanistic Insights into Oxidation-Induced Reductive Elimination for Ferraelectrocatalysis. Chemistry. 2019; 25(71):16382-16389. PMC: 6972497. DOI: 10.1002/chem.201904018. View

5.
Cirera J, Via-Nadal M, Ruiz E . Benchmarking Density Functional Methods for Calculation of State Energies of First Row Spin-Crossover Molecules. Inorg Chem. 2018; 57(22):14097-14105. DOI: 10.1021/acs.inorgchem.8b01821. View