Abstract
Atomistic simulations of the self-trapped hole equilibrium geometry and migration in a pure corundum crystal have been carried out using the semiempirical method of intermediate neglect of differential overlap and atom-atom potentials, as implemented in the CASCADE code. The activation energies for three different hole-hopping mechanisms are calculated. It is shown that the 60° reorientations of a self-trapped hole and hopping to the nearest O-atom triangle require almost the same activation energy, approximately 0·9 eV, which agrees quite well with the experi-mental value for hole migration of 0·7 eV. A new mechanism of small-polaron motion is suggested.
| Original language | English |
|---|---|
| Pages (from-to) | 443-463 |
| Number of pages | 21 |
| Journal | Philosophical Magazine B: Physics of Condensed Matter; Statistical Mechanics, Electronic, Optical and Magnetic Properties |
| Volume | 67 |
| Issue number | 4 |
| DOIs | |
| Publication status | Published - Apr 1993 |
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