ELECTRONIC AND LATTICE STRUCTURES IN POTASSIUM-DOPED STAGE-1 POLYACETYLENE .2. EFFECTS OF INCOMMENSURATE ARRANGEMENT OF DOPANTS AND REVALUATION OF THE THOMAS-FERMI POTENTIAL
A. Yamashiro et al., ELECTRONIC AND LATTICE STRUCTURES IN POTASSIUM-DOPED STAGE-1 POLYACETYLENE .2. EFFECTS OF INCOMMENSURATE ARRANGEMENT OF DOPANTS AND REVALUATION OF THE THOMAS-FERMI POTENTIAL, Synthetic metals, 74(1), 1995, pp. 29-41
Effects of incommensurate arrangements of dopants to carbon atoms are
investigated in K-doped stage-1 polyacetylene ((CH)(x)). Owing to the
large size of the valence orbitals of K, the dense nature of the inter
chain transfers (ICTs) via dopants is not so much affected by the dopa
nts' arrangement though their patterns change site by site. The Thomas
-Fermi potential calculated following Davis' method is necessary to gi
ve correct interchain Coulomb (ICC) and dopant Coulomb (DC) potentials
. The DC potentials are always alternating because of the zigzag natur
e of (CH)(x) chains though some approximate ones have phase changes or
intensity modulations due to incommensurate arrangements of dopants.
Hartree-Fock calculations show that the ground state is CDW bipolaron
lattices owing to the continually alternating nature of the DC potenti
als. They are ordered in-phase on each chain, owing to the ICC potenti
als with similar values at the nearest and next-nearest sites in a cha
in. ICTs little affect intrachain states owing to their dense nature.
The system has a gap between the bipolaron band and the conduction ban
d. Electron correlation seems to be essential to obtain a metallic (CH
)(x).