Bimolecular Reductive Elimination of Ethane from Pyridine(diimine) Iron Methyl Complexes: Mechanism, Electronic Structure, and Entry into [2+2] Cycloaddition Catalysis

被引:0
作者
Kovel, Carli B. [1 ]
Darmon, Jonathan M. [1 ]
Stieber, S. Chantal E. [1 ]
Pombar, Gisselle
Pabst, Tyler P. [1 ]
Theis, Bastian [1 ]
Turner, Zoe R. [1 ]
Ungor, Okten [2 ]
Shatruk, Michael [2 ]
DeBeer, Serena [3 ]
Chirik, Paul J. [1 ]
机构
[1] Princeton Univ, Dept Chem, Princeton, NJ 08544 USA
[2] Florida State Univ, Dept Chem & Biochem, Tallahassee, FL 32306 USA
[3] Max Planck Inst Chem Energy Convers, D-45470 Mulheim, Germany
基金
美国国家科学基金会;
关键词
ETHYLENE POLYMERIZATION; OLEFIN POLYMERIZATION; SPIN-CROSSOVER; SQUARE-PLANAR; BIS(IMINO)PYRIDINE; OLIGOMERIZATION; SPECTROSCOPY; ACTIVATION; TRANSITION; DISCOVERY;
D O I
10.1021/jacs.2c105475061
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The application of bimolecular reductive elimination to the activation of iron catalysts for alkene-diene cycloaddition is described. Key to this approach was the synthesis, characterization, electronic structure determination, and ultimately solution stability of a family of pyridine(diimine) iron methyl complexes with diverse steric properties and electronic ground states. Both the aryl-substituted, (MePDI)FeCH3 and (EtPDI)FeCH3 (RPDI = 2,6-(2,6-R2-C6H3N=CMe)2C5H3N), and the alkyl-substituted examples, (CyAPDI)FeCH3 (CyAPDI = 2,6-(C6H11N=CMe)2C5H3N), have molecular structures significantly distorted from planarity and S = 3/2 ground states. The related N-arylated derivative bearing 2,6-di-isopropyl aryl substituents, (iPrPDI)FeCH3, has an idealized planar geometry and exhibits spin crossover behavior from S = 1/2 to S = 3/2 states. At 23 degrees C under an N2 atmosphere, both (MePDI)FeCH3 and (EtPDI)FeCH3 underwent reductive elimination of ethane to form the iron dinitrogen precatalysts, [(MePDI)Fe(N2)]2(mu-N2) and [(EtPDI)Fe(N2)]2(mu-N2), respectively, while (iPrPDI)FeCH3 proved inert to C-C bond formation. By contrast, addition of butadiene to all three iron methyl complexes induced ethane formation and generated the corresponding iron butadiene complexes, (RPDI)Fe(eta 4-C4H6) (R = Me, Et, iPr), known precatalysts for the [2+2] cycloaddition of olefins and dienes. Kinetic, crossover experiments, and structural studies were combined with magnetic measurements and Mo''ssbauer spectroscopy to elucidate the electronic and steric features of the iron complexes that enable this unusual reductive elimination and precatalyst activation pathway. Transmetalation of methyl groups between iron centers was fast at ambient temperature and independent of steric environment or spin state, while the intermediate dimer underwent the sterically controlled rate-determining reaction with either N2 or butadiene to access a catalytically active iron compound.
引用
收藏
页码:5061 / 5073
页数:13
相关论文
共 56 条
[1]   Direct evidence for a coordination-insertion mechanism of ethylene oligomerization catalysed by neutral 2,6-bisiminopyridine iron monoalkyl complexes [J].
Angeles Cartes, M. ;
Rodriguez-Delgado, Antonio ;
Palma, Pilar ;
Sanchez, Luis J. ;
Campora, Juan .
CATALYSIS SCIENCE & TECHNOLOGY, 2014, 4 (08) :2504-2507
[2]   Sequential Reduction and Alkyl Exchange Reactions of Bis(imino)pyridine Dialkyliron(II) with Trimethylaluminum [J].
Angeles Cartes, M. ;
Rodriguez-Delgado, Antonio ;
Palma, Pilar ;
Alvarez, Eleuterio ;
Campora, Juan .
ORGANOMETALLICS, 2014, 33 (07) :1834-1839
[3]   Synthesis, Electronic Structure, and Ethylene Polymerization Activity of Bis(imino)pyridine Cobalt Alkyl Cations [J].
Atienza, Crisita Carmen Hojilla ;
Milsmann, Carsten ;
Lobkovsky, Emil ;
Chirik, Paul J. .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2011, 50 (35) :8143-8147
[4]   Propylene polymerization with a bisiminepyridine iron complex:: activation with Ph3C [B(C6F5)4] and AlR3;: iron hydride species in the catalytic cycle [J].
Babik, ST ;
Fink, G .
JOURNAL OF MOLECULAR CATALYSIS A-CHEMICAL, 2002, 188 (1-2) :245-253
[5]   Electronic structure of bis(imino)pyridine iron dichloride, monochloride, and neutral ligand complexes: A combined structural, spectroscopic, and computational study [J].
Bart, Suzanne C. ;
Chlopek, Krzysztof ;
Bill, Eckhard ;
Bouwkamp, Marco W. ;
Lobkovsky, Emil ;
Neese, Frank ;
Wieghardt, Karl ;
Chirik, Paul J. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2006, 128 (42) :13901-13912
[6]   Catalyst Design Principles Enabling Intermolecular Alkene-Diene [2+2] Cycloaddition and Depolymerization Reactions [J].
Beromi, Megan Mohadjer ;
Younker, Jarod M. ;
Zhong, Hongyu ;
Pabst, Tyler P. ;
Chirik, Paul J. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2021, 143 (42) :17793-17805
[7]   Nickel(I) Aryl Species: Synthesis, Properties, and Catalytic Activity [J].
Beromi, Megan Mohadjer ;
Banerjee, Gourab ;
Brudvig, Gary W. ;
Hazari, Nilay ;
Mercado, Brandon Q. .
ACS CATALYSIS, 2018, 8 (03) :2526-2533
[8]   Iron-catalyzed [2π+2π] cycloaddition of α,ω-dienes:: The importance of redox-active supporting ligands [J].
Bouwkamp, Marco W. ;
Bowman, Amanda C. ;
Lobkovsky, Emil ;
Chirik, Paul J. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2006, 128 (41) :13340-13341
[9]   Bis(imino)pyridine iron(II) alkyl cations for olefin polymerization [J].
Bouwkamp, MW ;
Lobkovsky, E ;
Chirik, PJ .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2005, 127 (27) :9660-9661
[10]   Square planar bis(imino) pyridine iron halide and alkyl complexes [J].
Bouwkamp, MW ;
Bart, SC ;
Hawrelak, EJ ;
Trovitch, RJ ;
Lobkovsky, E ;
Chirik, PJ .
CHEMICAL COMMUNICATIONS, 2005, (27) :3406-3408