Journal Article10.1063/1.1748007
The Ionization Potentials of the Deuterated Methanes
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TL;DR: In this article, the ionization potentials of CH4 and deuterated methanes were determined by electron impact using two 90° mass spectrometers with different types of sources, and a simple empirical method was used to obtain values which are reproducible to ± 0.02 volt.
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Abstract: The ionization potentials of methane, and of the four deuterated methanes, have been determined by electron impact using two 90° mass spectrometers with different types of sources. In addition, the ionization potentials of acetylene, deuterated acetylene, ethylene, and deuterated ethylene have been measured. A simple empirical method is used to obtain values which are reproducible to ±0.02 volt. For the methanes the ionization potential is found to increase with the number of deuterium atoms in the molecule, with a difference of 0.18 volt between the value for CH4 and that for CD4. Although this difference is found to be the same on each of the mass spectrometers, there is a difference of 0.11 volt between the absolute values of the ionization potential as determined for CH4 on the two instruments. In order to explain the difference between the ionization potentials of CH4 and CD4 on the basis of zero point energy differences, it is estimated that the force constants in the ionic state would need to have only about ¼ of their value in the ground state. Since this seems unreasonably low, it is suggested that the difference between the ionization potentials of the methanes, as measured by electron impact, may be caused, in part, by excess energy required for a ``vertical'' transition.
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Citations
Ionization Potentials, Appearance Potentials, and Heats of Formation of Gaseous Positive Ions
TL;DR: A compilation of ionization and appearance potentials of positive ions published from 1955 through June 1966 can be found in this article, where the heat of formation at 298 K of the positive ion has been computed using auxiliary thermochemical data.
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Thermochemical properties of gaseous Li3O and Li2O2
C. H. Wu,H. Kudoa,H. R. Ihle +2 more
TL;DR: In this article, mass spectrometric measurements over solid lithium oxide were performed to obtain the atomization energies of Li2O and Li3O. The ionization potentials were determined as I.P.(Li3O) = 4.54±0.2 eV and I.M.P(Li2O2) = 7.88±0 eV.
172
Thermochemical properties of gaseous Li2 and Li3
TL;DR: Using the Knudsen effusion mass spectrometric technique, the gas species Li(g), Li2, and Li3(g) have been observed over liquid lithium as mentioned in this paper.
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TL;DR: A mass spectrometer of the Nier type has been designed and constructed for the identification of isotopes and measurement of their relative abundances as mentioned in this paper, which is capable of detecting isotopic components present to the extent of 1 part in 100,000 of a sample.
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