Guided ion beam studies of transition metal–ligand thermochemistry
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[1] P. Armentrout,et al. Modeling Kinetic Shifts for Tight Transition States in Threshold Collision-Induced Dissociation. Case Study: Phenol Cation , 2002 .
[2] P. Armentrout,et al. Guided ion beam studies of the reaction of Nin+ (n=2–16) with D2: Nickel cluster-deuteride bond energies , 2002 .
[3] P. Armentrout,et al. Guided ion beam studies of the reactions of Ni+, Cu+, and Zn+ with CS2 and COS , 2002 .
[4] C. Ng. State-Selected and State-to-State Ion−Molecule Reaction Dynamics , 2002 .
[5] M. Rodgers,et al. Solvation of copper ions by acetone. Structures and sequential binding energies of Cu+(acetone)x, x = 1–4 from collision-induced dissociation and theoretical studies , 2002, Journal of the American Society for Mass Spectrometry.
[6] P. Armentrout,et al. Influence of d orbital occupation on the binding of metal ions to adenine. , 2002, Journal of the American Chemical Society.
[7] P. Armentrout,et al. Reactions of Pt+ with H2, D2, and HD: Effect of lanthanide contraction on reactivity and thermochemistry , 2002 .
[8] P. Armentrout,et al. Modeling kinetic shifts in threshold collision-induced dissociation. Case study: Dichlorobenzene cation dissociation , 2002 .
[9] P. Armentrout,et al. Reactions of Ta+ and W+ with H2, D2, and HD: Effect of lanthanide contraction and spin–orbit interactions on reactivity and thermochemistry , 2002 .
[10] P. Armentrout,et al. Guided ion beam studies of the reactions of Vn+ (n=2–13) with D2: Cluster–deuteride bond energies as a chemical probe of cluster electronic structure , 2002 .
[11] M. Rodgers,et al. Solvation of copper ions by acetonitrile. Structures and sequential binding energies of Cu+(CH3CN)x, x = 1-5, from collision-induced dissociation and theoretical studies , 2001 .
[12] P. Armentrout,et al. Activation of methane by size-selected iron cluster cations, Fen+ (n=2–15): Cluster-CHx (x=0–3) bond energies and reaction mechanisms , 2001 .
[13] M. Rodgers,et al. Periodic Trends in the Binding of Metal Ions to Pyrimidine Studied by Threshold Collision-Induced Dissociation and Density Functional Theory , 2001 .
[14] I. Kretzschmar,et al. Guided ion beam studies of the state-specific reactions of Cr+ and Mn+ with CS2 and COS , 2001 .
[15] P. Armentrout,et al. Sequential bond energies of Pt(CO)x + (x = 1 -4) determined by collision-induced dissociation , 2001 .
[16] P. Armentrout,et al. Guided Ion Beam Studies of the Reactions of Fe+ and Co+ with CS2 and COS , 2001 .
[17] P. Armentrout,et al. Guided ion beam study of collision-induced dissociation dynamics: integral and differential cross sections , 2001 .
[18] P. Armentrout,et al. Potential energy surface for activation of methane by Pt(+): a combined guided ion beam and DFT study. , 2001, Journal of the American Chemical Society.
[19] P. Armentrout,et al. Collision-induced dissociation and theoretical studies of Cu+-dimethoxyethane complexes , 2001, Journal of the American Society for Mass Spectrometry.
[20] K. Ervin. Metal-ligand interactions: Gas-phase transition metal cluster carbonyls , 2001 .
[21] P. Armentrout,et al. Collision-induced dissociation and theoretical studies of Cu+-dimethyl ether complexes , 2001 .
[22] P. Armentrout,et al. Guided ion beam studies of the reactions of with D2: cluster–deuteride bond energies as a chemical probe of cluster electronic structure , 2000 .
[23] M. Rodgers,et al. Periodic trends in the binding of metal ions to pyridine studied by threshold collision-induced dissociation and density functional theory , 2000 .
[24] P. Armentrout,et al. Thermochemistry and Reactivity of Cationic Scandium and Titanium Sulfide in the Gas Phase , 2000 .
[25] C. Haynes,et al. Activation of CH4, C2H6, and C3H8 by gas-phase Nb+ and the thermochemistry of Nb–ligand complexes , 2000 .
[26] A. Andersen,et al. Collision-Induced Dissociation and Theoretical Studies of Mg+ Complexes with CO, CO2, NH3, CH4, CH3OH, and C6H6 , 2000 .
[27] P. Armentrout,et al. Activation of C2H6, C3H8, HC(CH3)3, and c-C3H6 by gas-phase Ru+ and the thermochemistry of Ru-ligand complexes , 1999 .
[28] P. Armentrout,et al. On the Structural Dichotomy of Cationic, Anionic, and Neutral FeS(2). , 1999, Inorganic chemistry.
[29] P. Armentrout,et al. Reactions of Cu+(1S and 3D) with O2, CO, CO2, N2, NO, N2O, and NO2 studied by guided ion beam mass spectrometry , 1999 .
[30] P. Armentrout,et al. Experimental and Theoretical Studies of Vanadium Sulfide Cation , 1998 .
[31] P. Armentrout,et al. Guided ion beam studies of the reactions of Vn+ (n=2–17) with O2: Bond energies and dissociation pathways , 1998 .
[32] P. Armentrout,et al. Guided ion beam studies of the reactions of Crn+ (n=1–18) with CO2: Chromium cluster oxide bond energies , 1998 .
[33] P. B. Armentrout,et al. SEQUENTIAL BOND DISSOCIATION ENERGIES OF M+(NH3)X (X = 1-4) FOR M = TI-CU , 1998 .
[34] P. Armentrout,et al. Transition-metal ethene bonds: Thermochemistry of M+(C2H4)(n) (M = Ti-Cu, n = 1 and 2) complexes , 1998 .
[35] P. Armentrout,et al. Activation of CH4, C2H6, C3H8, and c-C3H6 by gas-phase Pd+ and the thermochemistry of Pd-ligand complexes , 1997 .
[36] P. Armentrout,et al. Guided ion-beam studies of the reactions of Fen+ (n=1–18) with CO2: Iron cluster oxide bond energies , 1997 .
[37] P. B. Armentrout,et al. Statistical modeling of collision-induced dissociation thresholds , 1997 .
[38] P. Armentrout,et al. Gas-Phase Metal Ion Ligation: Collision-Induced Dissociation of Fe(N2)x+ (x = 1−5) and Fe(CH2O)x+ (x = 1−4) , 1997 .
[39] P. Armentrout,et al. Guided ion beam studies of the reactions of Fe{sub n}{sup +} (n=2{endash}18) with O{sub 2}: Iron cluster oxide and dioxide bond energies , 1997 .
[40] P. B. Armentrout,et al. Collision-induced dissociation measurements on Li+(H2O)n, n = 1-6: The first direct measurement of the Li+-OH2 bond energy , 1997 .
[41] P. Armentrout,et al. Metal oxide and carbide thermochemistry of Y+, Zr+, Nb+, and Mo+ , 1996 .
[42] P. Armentrout,et al. Sequential bond energies of Ti(CO)+ x , x = 1-7 , 1996 .
[43] P. Armentrout,et al. Guided ion beam studies of the reactions of Fe+n (n=2–15) with D2: Cluster–deuteride bond energies as a chemical probe of cluster structures , 1996 .
[44] C. Haynes,et al. Reaction of FeCH2+ + D2: Probing the [FeCH4]+ Potential Energy Surface , 1996 .
[45] P. Armentrout,et al. REACTIONS OF Y+, ZR+, NB+, AND MO+ WITH H2, HD, AND D2 , 1996 .
[46] P. Armentrout. Building Organometallic Complexes from the Bare Metal: Thermochemistry and Electronic Structure along the Way , 1995 .
[47] P. Armentrout,et al. Activation of C2H6, C3H8, and c-C3H6 by gas-phase Rh+ and the thermochemistry of Rh-ligand complexes , 1995 .
[48] P. B. Armentrout,et al. Thermochemistry of transition metal benzene complexes: Binding energies of M(C6H6)x + (x = 1, 2) for M = Ti to Cu , 1995 .
[49] P. Armentrout,et al. Kinetic energy dependence of the reactions of Ru+, Rh+, Pd+, and Ag+ with O2 , 1995 .
[50] P. Armentrout,et al. GUIDED ION BEAM STUDIES OF THE REACTIONS OF AG+ WITH C2H6, C3H8, HC(CH3)3,AND C-C3H6 , 1995 .
[51] Farooq A. Khan,et al. Collision-Induced Dissociation Studies of Co(CO)x+, x = 1-5: Sequential Bond Energies and the Heat of Formation of Co(CO)4 , 1995 .
[52] C. Haynes,et al. THE POTENTIAL ENERGY SURFACE FOR ACTIVATION OF METHANE BY CO+ : AN EXPERIMENTAL STUDY , 1995 .
[53] P. Armentrout,et al. Reactions of Ru+, Rh+, Pd+, and Ag+ with H2, HD, and D2 , 1995 .
[54] P. Armentrout,et al. Collision-Induced Dissociation Studies of V(CO)x+, x = 1-7: Sequential Bond Energies and the Heat of Formation of V(CO)6 , 1995 .
[55] Farooq A. Khan,et al. Ligand effects in organometallic thermochemistry: The sequential bond energies of Ni(CO)x + and Ni(N2)x + (x = 1-4) and Ni(NO)x + (x = 1-3) , 1995 .
[56] J. K. Perry,et al. EXPERIMENTAL AND THEORETICAL STUDIES OF CO(CH4)X+ WITH X=1-4 , 1995 .
[57] P. Armentrout,et al. SEQUENTIAL BOND ENERGIES OF CU(CO)X+ AND AG(CO)X+ (X = 1-4) , 1995 .
[58] W. Goddard,et al. Energetics of Third-Row Transition Metal Methylidene Ions MCH2+ (M = La, Hf, Ta, W, Re, Os, Ir, Pt, Au) , 1994 .
[59] P. B. Armentrout,et al. Solvation of Transition Metal Ions by Water. Sequential Binding Energies of M+(H2O)x (x = 1-4) for M = Ti to Cu Determined by Collision-Induced Dissociation , 1994 .
[60] P. B. Armentrout,et al. Sequential bond energies of water to Na+ (3s0), Mg+ (3s1), and Al+ (3s2) , 1994 .
[61] P. Armentrout,et al. Stepwise solvation enthalpies of protonated water clusters: collision-induced dissociation as an alternative to equilibrium studies , 1993 .
[62] Farooq A. Khan,et al. Sequential bond energies of chromium carbonyls (Cr(CO)x+, x = 1-6) , 1993 .
[63] J. Simons,et al. Understanding heterolytic bond cleavage , 1992 .
[64] C. Bauschlicher,et al. A theoretical study of the positive and dipositive ions of M(NH3)n and M(H2O)n for M = Mg, Ca, or Sr , 1992 .
[65] P. Armentrout,et al. Sequential bond energies of Fe(CO)x + (x = 1-5): Systematic effects on collision-induced dissociation measurements , 1991 .
[66] K. Irikura,et al. Electronic structure considerations for methane activation by third-row transition-metal ions , 1991 .
[67] J. F. Harrison,et al. Electronic and geometric structures of various products of the scandium+ + water reaction , 1991 .
[68] P. Armentrout,et al. Collision-induced dissociation of Nb+n (n = 2 − 11): bond energies and dissociation pathways , 1990 .
[69] P. Armentrout,et al. Reactions of fourth‐period metal ions (Ca+−Zn+) with O2: Metal‐oxide ion bond energies , 1990 .
[70] P. Armentrout,et al. C-H Bond Activation as the Initial Step in the Co+-Mediated Demethanation of Propane: The Critical Role of Angular Momentum at the Rate-Limiting Transition State , 1990 .
[71] C. Bauschlicher,et al. Theoretical studies of the first- and second-row transition-metal mono- and dicarbonyl positive ions , 1990 .
[72] P. Armentrout. Periodic Trends in Transition Metal Bonds to Hydrogen, Carbon, and Nitrogen , 1990 .
[73] P. Armentrout,et al. Effect of internal excitation on the collision-induced dissociation and reactivity of Co2+ , 1990 .
[74] C. Bauschlicher,et al. The binding energies of one and two water molecules to the first transition‐row metal positive ions. II , 1989 .
[75] P. Armentrout,et al. Collision‐induced dissociation of Fe+n (n=2–10) with Xe: Ionic and neutral iron binding energies , 1989 .
[76] P. Armentrout,et al. Reaction of silicon ion (2P) with silane (SiH4, SiD4). Heats of formation of SiHn, SiHn+ (n = 1, 2, 3), and Si2Hn+ (n = 0, 1, 2, 3). Remarkable isotope exchange reaction involving four-hydrogen shifts , 1987 .
[77] P. Armentrout,et al. Energy dependence, kinetic isotope effects, and thermochemistry of the nearly thermoneutral reactions N+(3P)+H2(HD,D2)→NH+(ND+)+H(D) , 1987 .
[78] P. Armentrout,et al. Collision-induced dissociation of vanadium monoxide ion , 1986 .
[79] P. Armentrout,et al. C+(2P)+H2(D2,HD)?CH+(CD+)+H(D). I. Reaction cross sections and kinetic isotope effects from threshol , 1986 .
[80] P. Armentrout,et al. Reaction mechanisms and thermochemistry of vanadium ions with ethane, ethene and ethyne , 1986 .
[81] P. Armentrout,et al. Neutral and ionic metal methyl bond energies: zinc. , 1986, Journal of the American Chemical Society.
[82] P. Armentrout,et al. Kinetic energy dependence of Al++O2→AlO++O , 1986 .
[83] P. Armentrout,et al. Translational energy dependence of Ar++XY→ArX++Y (XY=H2,D2,HD) from thermal to 30 eV c.m. , 1985 .
[84] P. Armentrout,et al. Threshold behavior for chemical reactions: line-of-centers cross section for silicon(1+)(2P) + molecular hydrogen .fwdarw. silicon hydride(1+) (SiH+) + atomic hydrogen , 1984 .
[85] P. Armentrout,et al. Bond energy-bond order relations in transition-metal bonds: vanadium , 1984 .
[86] L. Halle,et al. Reaction of Cr+, Mn+, Fe+, Co+, and Ni+ with O2 and N2O. Examination of the translational energy dependence of the cross sections of endothermic reactions , 1982 .
[87] P. Armentrout,et al. Cobalt carbene ion: Reactions of Co+ with C2H4, cyclo-C3H6, and cyclo-C2H4O , 1981 .
[88] M. Bowers,et al. THEORY OF TRANSLATIONALLY DRIVEN REACTIONS , 1979 .
[89] F. Bozsó. Interaction of nitrogen with iron surfaces *1II. Fe(110) , 1977 .
[90] M. Grunze,et al. Chemisorption of hydrogen on iron surfaces , 1977 .
[91] D. Gerlich,et al. Integral cross sections for ion—molecule reactions. I. The guided beam technique , 1974 .
[92] P. Chantry. Doppler Broadening in Beam Experiments , 1971 .
[93] H. Gray,et al. Electronic structures of metal hexacarbonyls , 1968 .
[94] D. O. Hayward,et al. The calorimetric determination of the heats of adsorption of oxygen on evaporated metal films , 1960, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[95] P. Armentrout,et al. Reactions and thermochemistry of small transition metal cluster ions. , 2001, Annual review of physical chemistry.
[96] Rodgers,et al. Noncovalent metal-ligand bond energies as studied by threshold collision-induced dissociation , 2000, Mass spectrometry reviews.
[97] B. Freiser. Organometallic ion chemistry , 1996 .
[98] P. Armentrout,et al. Gas-phase metal ion ligation: collision-induced dissociation of aquairon (Fe(H2O)x+) and iron-methane (Fe(CH4)x+) (x=1-4) , 1993 .
[99] J. M. Simoes,et al. Energetics of organometallic species , 1992 .
[100] P. Armentrout,et al. Transition Metal Ion Mediated C-H and C-C Bond Activation of Alkanes: Dynamical Coupling between Entrance and Exit Channel Transition States , 1991 .
[101] C. W. Bauschlicher,et al. The bonding of multiple ligands to Mg(+) and Al(+) , 1991 .
[102] P. Armentrout,et al. Periodic trends in gas phase MH and MC bond energies , 1988 .
[103] P. Armentrout,et al. Reaction of scandium ions with ethane. First and second hydride-scandium ion bond energies , 1987 .
[104] C. Lifshitz,et al. Negative ion–molecule reactions of ozone and their implications on the thermochemistry of O3− , 1978 .
[105] P. J. Robinson. Unimolecular reactions , 1972 .
[106] J. Bearden,et al. Atomic energy levels , 1965 .
[107] F. Tompkins,et al. Calorimetric heats of sorption of gases on evaporated iron films , 1955 .