| Literature DB >> 27731421 |
Christoph Cobet1, Jacek Gasiorowski2, Reghu Menon3, Kurt Hingerl1, Stefanie Schlager4, Matthew S White5, Helmut Neugebauer4, N Serdar Sariciftci4, Philipp Stadler4.
Abstract
Electron-phonon interactions of free charge-carriers in doped pi-conjugatedEntities:
Year: 2016 PMID: 27731421 PMCID: PMC5059657 DOI: 10.1038/srep35096
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Ellipsometric spectra of ground state rr-P3HT and PBDTTT-c including molecular structure.
(a,b) The dielectric functions ε1, ε2 correspond to the real (left, ε1) and imaginary (right, ε2) part as indicated in the graphs. In (c) we plot the absorption coefficient of both polymers.
Figure 2Schematic illustration of the ground state and doped state in a π-conjugated polymer.
The characteristic in-gap polaron transitions P1,2 are indicated.
Figure 3Ellipsometric doped-state spectra on persistently doped rr-P3HT and PBDTTT-c.
In (a,b) the rise of the P1 polarons for both systems (with different intensities) is indicated. The response function of the absorption coefficient in the doped state is also shown in (c).
Figure 4Juxtaposition of persistently- and photodoped in-situ spectra by ATR-FTIR exploring P2 transitions.
In the mid-IR regime rr-P3HT (left) and PBDTTT-c (right) show the broad polaronic transitions (P2) and lower energy IRAV modes. We included generic oscillators (dashed lines) from the underlying model fit - their superposition renders the experimental spectra in precision.
Summary of all measured optical transitions referring to the peak maxima (all units in eV).
| Polymer | absorption edge | P1 | P2 | ||
|---|---|---|---|---|---|
| rr-P3HT | 1.90 | 2.30 | 2.10 | 1.50 | 0.35 |
| PBDTTT-c | 1.55 | 1.75 | 1.90 | 1.20 | 0.39 |
We denote the broadened shape of polaronic transitions.
Figure 5Simplified schematic of 1D and 2D-polarons as found for PBDTTT-c and rr-P3HT.
We point at the main finding of in-situ spectroscopy that the push-pull system enhances 1D-delocalization, while the single unit system shows a comparatively complex doped-state electronic structure.