| Literature DB >> 26395221 |
Masahiko Saito1,2, Itaru Osaka2,3, Yasuhito Suzuki2, Kazuo Takimiya1,2, Takashi Okabe4, Satoru Ikeda4, Tsuyoshi Asano4.
Abstract
A critical issue in polymer-based solar cells (PSCs) is to improve the power conversion efficiency (Entities:
Year: 2015 PMID: 26395221 PMCID: PMC4585800 DOI: 10.1038/srep14202
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Chemical structure of semiconducting polymers based on thiophene and thiazolothiazole (PTzBTs), and thiophene, thiazolothiazole and naphthobisthiadiazole (PTzNTzs).
Polymerization resultsa and electronic properties of the polymers.
| Polymer | PDI | |||||||
|---|---|---|---|---|---|---|---|---|
| CV | PESA | |||||||
| PTzNTz-EHBO | 32.7 | 64.3 | 2.0 | −5.41 | −5.28 | −3.45 | 490, 643, 677 | 784/1.58 |
| PTzNTz-EHHD | 47.0 | 91.8 | 2.0 | −5.40 | −5.28 | −3.46 | 487, 633, 675 | 787/1.58 |
| PTzNTz-BOBO | 51.6 | 113.2 | 2.2 | −5.40 | −5.30 | −3.46 | 482, 678 | 791/1.57 |
| PTzNTz-BOHD | 29.1 | 59.2 | 2.2 | −5.41 | −5.29 | −3.44 | 477, 680, | 788/1.57 |
Determined by high temperature GPC (DCB, 140 °C) using polystyrene standard.
HOMO and LUMO energy levels determined by cyclic voltammetry.
HOMO energy levels evaluated by photoelectron spectroscopy in air (PESA).
λedge: absorption edge, Eg: optical band gap.
Figure 2Cyclic voltammograms (a) and UV-vis absorption spectra (b) of the polymer thin films.
Figure 32D GIXD patterns of polymer-only films (a), DIO (1%)-aided polymer-only films (b), polymer/PC71BM blend films (c), and DIO (1%)-aided polymer/PC71BM blend films (d). The alkyl groups are shown at the right top of each image.
Figure 4AFM images of PTzNTz/PC71BM blend films (a) and DIO (1%)-aided PTzNTz/PC71BM blend films (b).
Figure 5J–V curves (a,c) and EQE spectra (b,d) of the solar cells based on PTzNTzs.
(a,b) The active layer was spun from the CB solution. (c,d) The active layer was spun from the CB/DIO (1 v/v%) solution.
Photovoltaic properties of the solar cells based on PTzNTzs/PC71BM.
| Polymer | DIO | FF | PCEmax[PCEave](%) | ||
|---|---|---|---|---|---|
| PTzNTz-EHBO | – | 16.0 | 0.84 | 0.67 | 9.0 [8.7] |
| 1% | 16.3 | 0.84 | 0.62 | 8.5 [8.1] | |
| PTzNTz-EHHD | – | 4.3 | 0.85 | 0.58 | 2.1 [1.9] |
| 1% | 15.6 | 0.84 | 0.67 | 8.8 [8.5] | |
| PTzNTz-BOBO | – | 3.3 | 0.85 | 0.60 | 1.7 [1.5] |
| 1% | 16.6 | 0.84 | 0.63 | 8.8 [8.5] | |
| PTzNTz-BOHD | – | 2.5 | 0.84 | 0.58 | 1.2 [1.1] |
| 1% | 9.8 | 0.84 | 0.63 | 5.2 [4.8] |
PCEmax: maximum power conversion efficiencies, PCEave: average power conversion efficiencies.
Figure 6Change of PCE for the cells using PTzNTz-EHBO fabricated by CB and CB/DIO (1 v/v%), PTzNTz-BOBO fabricated by CB/DIO (1 v/v%), and PTzBT-BOHD fabricated by CB under the storage for 500 hours at 85 °C in the glovebox.
MoOx (a) and WOx (b) were used as the hole transport layer of the cells.