Abstract
A general discussion of the dissociation of diatomic molecules and molecular ions by electric fields is presented. These calculations pertain primarily to the ground electronic states of the molecular systems. The H2+ ion is treated in considerable detail; the required fields for the dissociation range from 105 v/cm for the uppermost vibrational state to 2×108 v/cm for the ground state. The many-electron homonuclear ions are treated in successive charge states. The HD+, HT+, HD, LiH+, and LiH++ heteronuclear ions are considered. The dissociation of homonuclear ions and heteronuclear ions exhibit distinctly different features. The HD+ and HT+ ions are more susceptible to discussion than is H2+. The extent to which the dissociation by an electrostatic field and by the Lorentz force, ev×B, are equivalent is considered. The rates of induced dipole transitions to lower vibrational states can be made negligibly small compared with the dissociation rates. The application of this work to particle accelerators and to the injection problem for fusion devices is discussed.

This publication has 16 references indexed in Scilit: