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Exchange Reactions and Rates

Bibliographic References tagged with Exchange Reactions and Rates

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E.E. Simanek, M.I.M. Wazeer, J. P. Mathias, and G. M. Whitesides. 1994. “1H NMR Spectroscopy of the Hydrogen-Bonded Imide Groups of Hub(M)3:3CA Provides a Useful Method for the Characterization of These Aggregates”. J. Org. Chem., 59, Pp. 4904-9
E.E. Simanek, M.I.M. Wazeer, J. P. Mathias, and G. M. Whitesides. 1994. “1H NMR Spectroscopy of the Hydrogen-Bonded Imide Groups of Hub(M)3:3CA Provides a Useful Method for the Characterization of These Aggregates”. J. Org. Chem., 59, Pp. 4904-9
D. N. Chin, D.M. Gordon, and G. M. Whitesides. 1994. “Computational Simulations of Supramolecular Hydrogen-Bonded Aggregates: HubM2, FlexM3, and Adamantane-Based Hubs in Chloroform”. J. Am. Chem. Soc., 116, Pp. 12033-44
D. N. Chin, D.M. Gordon, and G. M. Whitesides. 1994. “Computational Simulations of Supramolecular Hydrogen-Bonded Aggregates: HubM2, FlexM3, and Adamantane-Based Hubs in Chloroform”. J. Am. Chem. Soc., 116, Pp. 12033-44
E.E. Simanek, J. P. Mathias, C. T. Seto, D. N. Chin, M. Mammen, D.M. Gordon, and G. M. Whitesides. 1995. “Noncovalent Synthesis: Using Physical-Organic Chemistry to Make Aggregates”. Acc. Chem. Res., 28, Pp. 37-44
E.E. Simanek, J. P. Mathias, C. T. Seto, D. N. Chin, M. Mammen, D.M. Gordon, and G. M. Whitesides. 1995. “Noncovalent Synthesis: Using Physical-Organic Chemistry to Make Aggregates”. Acc. Chem. Res., 28, Pp. 37-44
E.E. Simanek, M. Mammen, D.M. Gordon, D. N. Chin, J. P. Mathias, C. T. Seto, and G. M. Whitesides. 1995. “Design and Synthesis of Hydrogen-Bonded Aggregates: Theory and Computation Applied to Three Systems Based on the Cyanuric Acid-Melamine Lattice”. Tetrahedron, 51, Pp. 607-19
E.E. Simanek, M. Mammen, D.M. Gordon, D. N. Chin, J. P. Mathias, C. T. Seto, and G. M. Whitesides. 1995. “Design and Synthesis of Hydrogen-Bonded Aggregates: Theory and Computation Applied to Three Systems Based on the Cyanuric Acid-Melamine Lattice”. Tetrahedron, 51, Pp. 607-19
G. M. Whitesides, J.E. Nordlander, and J.D. Roberts. 1962. “Nuclear Magnetic Resonance Spectroscopy: G,g-Dimethylallylmagnesium Bromide”. J. Am. Chem. Soc., 84, Pp. 2010-11
G. M. Whitesides, J.E. Nordlander, and J.D. Roberts. 1962. “Nuclear Magnetic Resonance Spectroscopy: G,g-Dimethylallylmagnesium Bromide”. J. Am. Chem. Soc., 84, Pp. 2010-11
G. M. Whitesides, J.P.; Sevenair, and R.W. Goetz. 1967. “Conformational Isomerism in 1-Substituted Derivatives of 3,3-Dimethylbutane”. J. Am. Chem. Soc., 89, Pp. 1135-44
G. M. Whitesides, J.P.; Sevenair, and R.W. Goetz. 1967. “Conformational Isomerism in 1-Substituted Derivatives of 3,3-Dimethylbutane”. J. Am. Chem. Soc., 89, Pp. 1135-44
G. M. Whitesides and H.L. Mitchell. 1969. “Pseudorotation in (CH3)2NPF4”. J. Am. Chem. Soc., 91, Pp. 5384-86
G. M. Whitesides and H.L. Mitchell. 1969. “Pseudorotation in (CH3)2NPF4”. J. Am. Chem. Soc., 91, Pp. 5384-86
G. M. Whitesides, E.R. Stedronsky, C.P. Casey, and San Filippo Jr. 1970. “The Mechanism of Thermal Decomposition of N-Butyl(tri-N-Butylphosphine)copper(I)”. J. Am. Chem. Soc., 92, Pp. 1426-27
G. M. Whitesides, E.R. Stedronsky, C.P. Casey, and San Filippo Jr. 1970. “The Mechanism of Thermal Decomposition of N-Butyl(tri-N-Butylphosphine)copper(I)”. J. Am. Chem. Soc., 92, Pp. 1426-27