Zg. Yu et al., Green's function approach for a dynamical study of transport in metal/organic/metal structures, PHYS REV B, 59(24), 1999, pp. 16001-16010
We develop an efficient Green's function formalism to study transport in or
ganic tunneling devices. We find a crossover behavior of the transport from
free-electron-like to polaronlike as the ratio between the electronic and
organic lattice vibration time scales is varied. If the electronic time sca
le is fast compared to the lattice vibration time scale, the lattice motion
lags behind the incoming wave packet and the transmission is similar to th
at in a static case where the lattice is frozen. In the opposite limit, the
lattice follows the electron and the first transmission peak shifts from t
he conduction-band edge toward the self-trapped polaron level. We investiga
te the transmission coefficient, the transfer of energy between the inciden
t electron and the lattice, and the time evolution of the electron energy d
istribution function as the ratio of these time scales is changed. To simul
ate lattice fluctuations we study a preexisting lattice distortion and find
enhanced subgap transmission. Our results are important for understanding
electrical injection in polymer light-emitting diodes and other organic-bas
ed electronic device structures, and electrical transport in molecular wire
s. [S0163-1829(99)04223-X].