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Publication
Featured researches published by Peter M. Graham.
Journal of the American Chemical Society | 2008
Jenkins Y. K. Tsang; Miriam S. A. Buschhaus; Peter M. Graham; Christopher J. Semiao; Scott P. Semproni; Simon J. Kim; Peter Legzdins
Thermolysis of Cp*W(NO)(CH2CMe3)(eta(3)-CH2CHCHMe) (1) at ambient temperatures leads to the loss of neopentane and the formation of the eta(2)-diene intermediate, Cp*W(NO)(eta(2)-CH2=CHCH=CH2) (A), which has been isolated as its 18e PMe3 adduct. In the presence of linear alkanes, A effects C-H activations of the hydrocarbons exclusively at their terminal carbons and forms 18e Cp*W(NO)(n-alkyl)(eta(3)-CH2CHCHMe) complexes. Similarly, treatments of 1 with methylcyclohexane, chloropentane, diethyl ether, and triethylamine all lead to the corresponding terminal C-H activation products. Furthermore, a judicious choice of solvents permits the C-H activation of gaseous hydrocarbons (i.e., propane, ethane, and methane) at ambient temperatures under moderately elevated pressures. However, reactions between intermediate A and cyclohexene, acetone, 3-pentanone, and 2-butyne lead to coupling between the eta(2)-diene ligand and the site of unsaturation on the organic molecule. For example, Cp*W(NO)(eta(3),eta(1)-CH2CHCHCH2C(CH2CH3)2O) is formed exclusively in 3-pentanone. When the site of unsaturation is sufficiently sterically hindered, as in the case of 2,3-dimethyl-2-butene, C-H activation again becomes dominant, and so the C-H activation product, Cp*W(NO)(eta(1)-CH2CMe=CMe2)(eta(3)-CH2CHCHMe), is formed exclusively from the alkene and 1. All new complexes have been characterized by conventional spectroscopic and analytical methods, and the solid-state molecular structures of most of them have been established by X-ray crystallographic analyses. Finally, the newly formed alkyl ligands may be liberated from the tungsten centers in the product complexes by treatment with iodine. Thus, exposure of a CDCl3 solution of the n-pentyl allyl complex, Cp*W(NO)(n-C5H11)(eta(3)-CH2CHCHMe), to I2 at -60 degrees C produces n-C5H11I in moderate yields.
Inorganic Chemistry | 2000
Peter M. Graham; Robert D. Pike; Michal Sabat; Rosa D. Bailey; William T. Pennington
Organometallics | 2003
Peter M. Graham; Scott H. Meiere; Michal Sabat; W. Dean Harman
Journal of the American Chemical Society | 2005
Peter M. Graham; David A. Delafuente; Weijun Liu; William H. Myers; Michal Sabat; W. D. Harman
Organometallics | 2009
Scott P. Semproni; Peter M. Graham; Miriam S. A. Buschhaus; Brian O. Patrick; Peter Legzdins
Organometallics | 2005
William H. Myers; Kevin D. Welch; Peter M. Graham; Andrew P. Keller; Michal Sabat; Carl Trindle; W. Dean Harman
Organometallics | 2005
Peter M. Graham; Christopher J. Mocella; Michal Sabat; W. Dean Harman
Organometallics | 2008
Peter M. Graham; Miriam S. A. Buschhaus; Craig B. Pamplin; Peter Legzdins
Organometallics | 2006
Yunkyoung Ha; Stefan Dilsky; Peter M. Graham; Weijun Liu; Timothy M. Reichart; Michal Sabat; Joseph M. Keane; W. Dean Harman
Organometallics | 2010
Peter M. Graham; Miriam S. A. Buschhaus; Rhett A. Baillie; Scott P. Semproni; Peter Legzdins