| Literature DB >> 28836136 |
Qingduan Li1,2, Jianwei Yang1, Shuangshuang Chen1,2, Jizhao Zou3, Weiguang Xie4, Xierong Zeng1,2.
Abstract
Efficient Si/organic hybrid solar cells were fabricated with dimethyl sulfoxide (DMSO) and surfactant-doped poly(3,4-ethylenedioxythiophene): polystyrene (PEDOT:PSS). A post-treatment on PEDOT:PSS films with polar solvent was performed to increase the device performance. We found that the performance of hybrid solar cells increase with the polarity of solvent. A high conductivity of 1105 S cm- 1 of PEDOT:PSS was achieved by adopting methanol treatment, and the best efficiency of corresponding hybrid solar cells reaches 12.22%. X-ray photoelectron spectroscopy (XPS) and RAMAN spectroscopy were utilized to conform to component changes of PEDOT:PSS films after solvent treatment. It was found that the removal of the insulator PSS from the film and the conformational changes are the determinants for the device performance enhancement. Electrochemical impedance spectroscopy (EIS) was used to investigate the recombination resistance and capacitance of methanol-treated and untreated hybrid solar cells, indicating that methanol-treated devices had a larger recombination resistance and capacitance. Our findings bring a simple and efficient way for improving the performance of hybrid solar cell.Entities:
Keywords: Conductivity; Hybrid solar cells; PEDOT:PSS; Si/organic; Treatment
Year: 2017 PMID: 28836136 PMCID: PMC6890909 DOI: 10.1186/s11671-017-2276-5
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Scheme 1a Molecule structure of PEDOT:PSS. b Device structure
Fig. 1a J-V curves under the illumination of AM 1.5, 100 mW cm− 2, and b corresponding EQE spectra
Photovoltaic performance of the hybrid solar cells with PEDOT:PSS treated with different chemicals
| Treatment | PCEmax(PCEave)a (%) |
|
|
|
|
|---|---|---|---|---|---|
| Untreated | 9.51 (9.35) | 0.552 | 63.14 | 27.09 | 26.68 |
| IPA | 9.98 (9.62) | 0.557 | 64.66 | 27.71 | 27.35 |
| Ethanol | 10.69 (10.41) | 0.556 | 68.27 | 28.16 | 27.74 |
| Methanol | 12.22 (12.13) | 0.555 | 72.01 | 30.58 | 30.11 |
aThe average PCE was obtained from more than 10 devices
b J SC calculated photocurrent density from EQE measurements
Physical properties of solvents used for film treatments
| Chemical | Boiling pt./°C | Dielectric constant | Absolute viscosity | Polarity (water = 100) |
|---|---|---|---|---|
| IPA | 82 | 18.3 | 2.0 | 54.6 |
| Ethanol | 78 | 22.2 | 1.08 | 65.4 |
| Methanol | 64 | 32.6 | 0.6 | 76.2 |
Fig. 2a Conductivities of PEDOT:PSS films treated with different chemicals. b Variation of transmittance and sheet resistance for PEDOT:PSS treated with different chemicals
Fig. 3Raman spectra of the untreated PEDOT:PSS film and the PEDOT:PSS films treated with different chemicals
Scheme 2a Benzoid and b quinoid structures exist within PEDOT
Fig. 4S (2p) XPS spectra of untreated and methanol-treated PEDOT:PSS films
Fig. 5a EIS (Nyquist plots) of untreated and methanol-treated Si/PEDOT:PSS hybrid solar cells under zero bias voltage, experimental data are represented by dots, and fitting data according to the relevant models are represented by lines, respectively. b Equivalent circuit model to fit the experimental data