A mechanism displaying autocatalysis:: The hydrogenation of acetophenone catalyzed by RuH(S-binap)(app) where app is the amido ligand derived from 2-amino-2-(2-pyridyl)propane

被引:79
作者
Hadzovic, Alen [1 ]
Song, Datong [1 ]
MacLaughlin, Christina M. [1 ]
Morris, Robert H. [1 ]
机构
[1] Univ Toronto, Dept Chem, Davenport Lab, Toronto, ON M5S 3H6, Canada
关键词
D O I
10.1021/om700849w
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
The 2-(aminomethyl)pyridine (ampy) ligand is known to activate ruthenium complexes for the catalytic hydrogenation of ketones. Here we prepare well-defined catalysts using the new ligand 2-amino-2-(2-pyridyl)propane (appH) in order to elucidate the role of the pyridyl group. The ligand has two methyl groups on the alpha-carbon to block beta-hydride elimination reactions. It reacts with RuHCl(S-binap)(PPh3) to produce the orange-yellow complex RuHC;(S-binap)(appH) (2). In the presence of a strong base (KOt-Bu), complex 2 is converted into an active catalyst for the H-2-hydrogenation of acetophenone in benzene under mild conditions (20 degrees C, 5 atm H-2). Solutions of 2 rapidly react with (KOBu)-Bu-t under an argon atmosphere to produce a deep red amidohydrido complex RuH(S-binap)(app) (3), which is an active catalyst. A crystal structure determination of 3 represents the first structure of a Ru-binap hydrido-amido complex. It reveals a five-coordinate Ru(II) center with a short Ru-N(amido) distance (1.962(3) angstrom) and a trigonal planar geometry at the amido nitrogen. The kinetic experiments using 3 as a catalyst and acetophenone as a substrate in benzene show that the rate of I-phenylethanol production is dependent on both catalyst and H2 concentrations. These results parallel the behavior of the conventional Noyori-type Ru(II) catalysts with diamine ligands. However, unique features of catalysis with 3 are as follows: (1) the formation of a dihydride is thermodynamically unfavorable at 1 atm H-2, 20 degrees C; (2) the rate shows a dependence on the product concentration since it increases as the product builds up during the reaction in an autocatalytic fashion. A significant increase in the initial rate is observed when a critical concentration of rac-1-phenylethanol is present at the beginning of the reaction. The addition of 2-propanol in benzene raises the rate as well, and the fastest H2-hydrogenation is achieved if 2-propanol is used as a solvent. This "alcohol effect" is favored by the pyridyl ligand app since it was not observed for the similar catalyst RuH(NHCMe2CMe2NH2)(binap). While 3 is an exceptional catalyst for H-2-hydrogenation in 2-propanol (TOF > 6700 h(-1) at 20 degrees C, 5 atm H-2), it has a lower activity in transfer hydrogenation from the same solvent under comparable conditions (TOF 110 h(-1) at 20 degrees C, 1 atm At). DFT calculations on the model amido complex Ru(H)(PH3)(2)(HNCH2C5H4N) (4) confirm that the splitting of H2 to give the trans dihydride is the turnover-limiting step and lies 9 kcal/mol in free energy above the transition state for the ketone hydrogenation step. The formation of the dihydride is entropically unfavorable. The theoretical activation barrier for 1712 splitting is lowered by 5 kcal/mol by an alcohol-assisted mechanism but still remains higher in energy than the ketone hydrogenation step. This latter step can also be alcohol-assisted and can result in a different ee in the product alcohol than without alcohol assistance, as observed experimentally for reactions using 2-propanol versus benzene as the solvent. With alcohol present, an alkoxohydridoruthenium(II) complex is calculated to be the catalyst resting state.
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页码:5987 / 5999
页数:13
相关论文
共 65 条
[41]   SYNTHESIS, CHARACTERIZATION AND REACTIVITY OF SOME MONONUCLEAR AND DINUCLEAR CHLORORUTHENIUM COMPLEXES CONTAINING CHELATING DITERTIARY PHOSPHINES (P-P) WITH P-PRU = 1 [J].
JOSHI, AM ;
THORBURN, IS ;
RETTIG, SJ ;
JAMES, BR .
INORGANICA CHIMICA ACTA, 1992, 198 :283-296
[42]   DIE HYDRIERENDE DEHALOGENIERUNG AROMATISCHER HALOGENVERBINDUNGEN MIT RANEY-NICKEL UND ALKALI [J].
KAMMERER, H ;
HORNER, L ;
BECK, H .
CHEMISCHE BERICHTE-RECUEIL, 1958, 91 (07) :1376-1379
[43]   The accuracy of the pseudopotential approximation .2. A comparison of various core sizes for indium pseudopotentials in calculations for spectroscopic constants of InH, InF, and InCl [J].
Leininger, T ;
Nicklass, A ;
Stoll, H ;
Dolg, M ;
Schwerdtfeger, P .
JOURNAL OF CHEMICAL PHYSICS, 1996, 105 (03) :1052-1059
[44]   Dihydridoamine and hydridoamido complexes of ruthenium(II) with a tetradentate P-N-N-P donor ligand [J].
Li, TS ;
Churlaud, R ;
Lough, AJ ;
Abdur-Rashid, K ;
Morris, RH .
ORGANOMETALLICS, 2004, 23 (26) :6239-6247
[45]   How well can hybrid density functional methods predict transition state geometries and barrier heights? [J].
Lynch, BJ ;
Truhlar, DG .
JOURNAL OF PHYSICAL CHEMISTRY A, 2001, 105 (13) :2936-2941
[46]   Bifunctional metal-ligand catalysis:: Hydrogenations and new reactions within the metal-(di)amine scaffold [J].
Muñiz, K .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2005, 44 (41) :6622-6627
[47]  
Noyori R, 2001, ANGEW CHEM INT EDIT, V40, P40, DOI 10.1002/1521-3773(20010105)40:1<40::AID-ANIE40>3.0.CO
[48]  
2-5
[49]   Asymmetric hydrogenation of tert-alkyl ketones [J].
Ohkuma, T ;
Sandoval, CA ;
Srinivasan, R ;
Lin, Q ;
Wei, Y ;
Muñiz, K ;
Noyori, R .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2005, 127 (23) :8288-8289
[50]   PRACTICAL ENANTIOSELECTIVE HYDROGENATION OF AROMATIC KETONES [J].
OHKUMA, T ;
OOKA, H ;
HASHIGUCHI, S ;
IKARIYA, T ;
NOYORI, R .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1995, 117 (09) :2675-2676