| Note: This is an inventory of the
writings contained in the Richard C. Schoonmaker Papers, Series VII
Writings.
Articles:
“Gaseous Species in the Vaporization of Sodium and Potassium Hydroxides,” R.
Porter and R. Schoonmaker, J. Chem. Phys., 28, 168 (1958).
“Gaseous Species in the Vaporization of Sodium Hydroxide,” R.
Schoomnaker and R. Porter, J. Chem. Phys., 28, 454 (1958).
“Gaseous Species in the Vaporization of Potassium Hydroxide,” R.
Porter and R. Schoonmaker, J. Phys. Chem., 62, 234 (1958).
“Gaseous Species in the NaOH-KOH System,” R. Porter and R.
Schoonmaker, J. Phys. Chem., 62, 486 (1958).
“Mass Spectrometric Study of Ferrous Chloride Vapor,” R. Schoonmaker
and R. Porter, J. Chem. Phys., 29, 116 (1958).
“Mass Spectrometric Study of the Vaporization of NaF, LiF, and NaF-LiF
Mixtures,” R. Porter and R. Schoonmaker, J. Chem. Phys.,
29, 1070 (1958).
“Mass Spectrum of Gaseous Cupric Nitrate,” R. Porter, R. Schoonmaker,
and C. Addison, Proc. Chem. Soc., 11, Jan. 1959.
“A Mass Spectrometric Study of the Vaporization of Ferrous Bromide,” R.
Porter and R. Schoonmaker, J. Phys. Chem., 61, 626 (1959).
“Heats of Dimerization of Alkali Fluoride Molecules,” R. Schoonmaker
and R. Porter, J. Chem. Phys., 30, 283 (1959).
“Mass Spectrometric and Thermodynamic Study of the Vaporization
of Transition Metal (II) Halides,” R. Schoonmaker, A. Friedman,
and R. Porter, J. Chem. Phys., 31, 1586 (1959).
“Mass Spectrometric Study of Alkali Hydroxide Vapors,” R.
Schoonmaker and R. Porter, J. Chem. Phys., 31, 830 (1959).
“Mass Spectrometric Study of High Temperature Reactions of H20(g)
and HCI(g) with Na2O and Li2O,” R. Schoonmaker and R. Porter,
J. Phys. Chem., 6-4, 457 (1960)
“Velocity Analysis of Molecular Beams Generated from NaOH Vapors,” V.
Pao and R. Schoonmaker, J. Chem. Phys., 33, 1718 (1960).
“Long Range Attractive Potentials from Molecular Beam Studies on
the Systems K, N2(g) and KCl, N2(g),” R.C. Schoomnaker, J.
Phys. Chem., 65, 892 (1961).
“Gallium Nitride,” Richard C. Schoonmaker and Claudia E. Burton,
Inorganic Syntheses, Vol VII, p. 16, McGraw Hill Book Co. (1963).
“The Vaporization of Gallium Phosphide,” P.K. Lee and Richard
C. Schoonmaker, Condensation and Evaporation of Solids, Gordon
and Breach Pub. Co., New York, N.Y., 1965, p. 379.
“Vaporization Catalysis. The Decomposition of Gallium Nitride,” Richard
C. Schoomnaker, Albert Buhl, and James Lemley, J. Phys. Chem.,
69, 3455 (1965).
“The Vaporization of Zinc Phosphide,” Richard C. Schoonmaker,
A.R. Venkitaraman, and P.K. Lee, J. Phys. Chem., 71, 2767 (1967).
“The Vaporization of Cadmium Phosphide,” Richard C. Schoonmaker
and Kenneth Rubinson, J. Phys. Chem., 71, 3345 (1967).
“The Invisible Man: Josiah Willard Gibbs,” The Malahat Review,
University of Victoria, Victoria, British Columbia, Canada, 111
(1968).
“The Vaporization of Zinc Arsenide,” Richard C. Schoonmaker
and Keith Lemmerrnan, J. Chem and Eng. Data, 17, 139 (1972).
“Mechanism of Condensation I. Direct Determination of Coefficients
for Condensation of Molecular Beams of Sodium Chloride on (100)
Oriented Singe Crystals of NaCl,” R.C. Schoonmaker and V.
Lo, J. Chem. Phys., 58, 727 (1973).
“Mechanism of Condensation II. Condensation of Molecular Beams of
Sodium Chloride on Clean and Contaminated Surfaces of Oriented
Single Crystals of NaCl,” R.C. Schoomnaker and L.C. Tu, J.
Chem. Phys., 60, 4650 (1974).
“Low Energy Auger and Loss Spectra of Magnesium and its Oxide,” A.P.
Janssen, R.C. Schoonmaker, A. Chambers, and M. Prutton, Surf. Sci.,
45, 45 (1974).
“Flame Temperature,” N.C. Craig, T.S. Carlton, and R.C. Schoonmaker,
J. Chem. Ed., 51, 54 (1974).
“Interfacial Auger Transitions in Oxidized Sodium and Magnesium,” A.P.
Janssen, R.C. Schoomnaker, J.A.D. Matthew, and A. Chambers, Solid
State Communications, 14, 1263 (1974).
“A Comparative Study of Single Crystal Magnesium Oxide and Oxidized
Magnesium by Auger Electron Spectroscopy,” A.P. Janssen,
R.C. Scoonmaker, and A Chambers, Surf. Sci., 47, 41 (1975).
“A Study of Epitaxial Growth of Magnesium on Magnesium Oxide (001)
Using Reflection Diffraction, LEED, and Auger Spectroscopy,” A.P.
Janssen, R.C. Schoonmaker, and A. Chambers, Surf. Sci., 49, 143
(1975).
“Desorption and Diffusion of Sodium Chloride Molecules Adsorbed
on a Sodium Chloride (100) Crystal Surface,” Paul O’Connor
and Richard Schoonmaker, J. Phys. Chem., 80, 390 (1976).
“An Auger and Reflective Electron Diffraction Investigation of Oxygen
and Hydrogen Adsorption on Strontium Surfaces,” A.P. Janssen
and R.C. Schoonmaker, Surf. Sci., 55, 109 (1976).
“Structure Sensitivity in the Iron Single-Crystal Catalysed Synthesis
of Ammonia,” N.D. Spencer, R.C. Schoonmaker, and G.A. Somorjai,
Nature, 294, 643 (1981).
“Iron Single Crystals as Ammonia Synthesis Catalysts: Effect of
Surface Structure on Catalyst Activity,” N.D. Spencer, R.C.
Schoonmaker, and G.A. Somorjai, J. Catalysis, 74, 129 (1982).
“Dynamics of the Gas-surface Interaction and the Mechanism of Condensation
of RbI Molecules Incident on NaCI (100) Surfaces,” S. Baker
and R.C. Schoonmaker, J. Appl. Phys., 58, 2091 (1985).
“Bridging the ‘Material Gap’ Between Single
Crystal Studies and Real Catalysis,” R. Schloegl, R.C. Schoonmaker,
M. Muhler, and G. Ertl, Catalysis Letters, 1, 237 (1988).
“Molecular- and Atomic-Beam Scattering from Surfaces. Dynamics of
Gas-Surface Interactions and Mechanisms of Condensation of Cesium
Iodide Molecules and Cesium Atoms Incident on Sodium Chloride (c,
100),” T. Brown, K. Pranata, E. Heyman, and R. Schoonmaker,
Chemistry of Materials, 3, 298 (1991).
“Microstructure of the Activated Industrial Ammonia Synthesis Catalyst,” W.
Mahdi, J. Schuetze, R. Wineberg, R. Schoonmaker, R. Schloegl, and
G. Ertl, Catalysis Letters, 11, 19-32 (1991).
“Callium (III) Nitride,” R. Schoonmaker, n.d.
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