| Literature DB >> 24924096 |
James W Kingsley1, Pier Paolo Marchisio1, Hunan Yi2, Ahmed Iraqi2, Christy J Kinane3, Sean Langridge3, Richard L Thompson4, Ashley J Cadby5, Andrew J Pearson6, David G Lidzey5, Richard A L Jones5, Andrew J Parnell5.
Abstract
We have used Soxhlet solvent purification to fractionate a broad molecular weight distribution of the polycarbazole polymer PCDTBT into three lower polydispersity molecular weight fractions. Organic photovoltaic devices were made using a blend of the fullerene acceptor PC₇₁BM with the molecular weight fractions. An average power conversion efficiency of 5.89% (peak efficiency of 6.15%) was measured for PCDTBT blend devices with a number average molecular weight of Mn = 25.5 kDa. There was significant variation between the molecular weight fractions with low (Mn = 15.0 kDa) and high (Mn = 34.9 kDa) fractions producing devices with average efficiencies of 5.02% and 3.70% respectively. Neutron reflectivity measurements on these polymer:PC₇₁BM blend layers showed that larger molecular weights leads to an increase in the polymer enrichment layer thickness at the anode interface, this improves efficiency up to a limiting point where the polymer solubility causes a reduction of the PCDTBT concentration in the active layer.Entities:
Year: 2014 PMID: 24924096 PMCID: PMC4055896 DOI: 10.1038/srep05286
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Molecular weight data for the separate PCDTBT fractions. Polymer solutions in 1,2,4-trichlorobenzene at 100 °C were used as samples for GPC analysis. The GPC curves were obtained by the RI-detection method, which was calibrated with a series of narrow polystyrene standards (Polymer Laboratories)
| Polymer Soxhlet Fraction | Mn (kDa) | Mw (kDa) | Dispersity |
|---|---|---|---|
| Chloroform (CH) | 15.0 | 34.8 | 2.32 |
| Chlorobenzene (CB) | 21.5 | 38.8 | 1.8 |
| Dichlorobenzene (DCB) | 34.9 | 61.6 | 1.76 |
| Unfractionated | 27.3 | 82.2 | 3.01 |
Figure 1Gel Permeation Chromatography (GPC) data for the three solvent Soxhlet fractions of PCDTBT and the unfractionated PCDTBT.
Figure 2Specular neutron reflectivity data for the different Soxhlet fractions of PCDTBT polymer studied and the unfractionated polymer, showing data with associated errors and fits to the data (black lines).
The data are offset by factors of 10 for clarity. The unfractionated data was measured using a magnetic reference layer (NiFe) with polarised neutrons and so we have measured spin up and spin down to give two reflectivity datasets. The scattering length density of pure PCDTBT was taken as 1.34 × 10−6Å−2 (from previous NR thin film measurements of PCDTBT) and PC71BM as 4.46 × 10−6 Å−2 was calculated using the NIST online database.
Figure 3a.) Profiles generated from the NR fitted data showing the PCDTBT PCBM vertical profile on PEDOT:PSS. The distance is scaled to the onset of the PEDOT:PSS layer to aid comparisons in the profiles. b.) Vertical depth profile measured for the unfractionated polymer as measured via ion beam analysis.
Neutron scattering parameters for the thin films composed of different molecular weight fractions
| PCDTBT Mw | SLD of bulk layer (Å−2) | % PC71BM in bulk layer | Polymer enriched layer thickness [nm] |
|---|---|---|---|
| Un-fractionated | 3.76e-6 | 79 | 11 |
| Low | 3.84e-6 | 81 | 12 |
| Medium | 3.90e-6 | 83 | 31 |
| High | 4.33e-6 | 97 | 25 |
Figure 4Extinction coefficient data of the thin film OPV blend and pure constituent samples.
a.) Pure PCDTBT and PC71BM thin films. b.) Data for the low, medium and high Mn OPV blend layers. c.) A linear combination mixing model based on the neutron reflectivity derived composition for the OPV films.
Key metrics for OPV devices fabricated from different OPV fractions. The average data presented here is simply the average of the best 12 out of 16 pixels (top 75%). The device architecture is ITO/PEDOT:PSS/Active layer PCDTBT:PC71BM/Calcium (2.5 nm)/Aluminium (100 nm)
| Polymer fraction | Maximum (PCE) [%] | Average PCE [%] | Average Voc [V] | Average JSC [mA/cm2] | Average Fill Factor [%] |
|---|---|---|---|---|---|
| Unfractionated | 4.62 | 4.30 ± 0.27 | 0.86 ± 0.01 | −10.48 ± 0.30 | 47.8 ± 1.8 |
| Low | 5.10 | 5.02 ± 0.07 | 0.87 ± 0.01 | −10.78 ± 0.11 | 53.6 ± 0.7 |
| Medium | 6.15 | 5.89 ± 0.17 | 0.88 ± 0.01 | −11.64 ± 0.55 | 57.7 ± 2.2 |
| High | 4.12 | 3.70 ± 0.34 | 0.86 ± 0.01 | −7.79 ± 0.39 | 55.4 ± 6.0 |
Figure 5Representative JV curves for OPV devices fabricated from the different molecular weight fractions as well as the unfractionated PCDTBT.