| Literature DB >> 28891990 |
Yifan Wang1,2, Hailin Cong3,4, Bing Yu5,6, Zhiguo Zhang7, Xiaowei Zhan8.
Abstract
Indium tin oxide (ITO) is a transparent conductive material which is extensively used in organic solar cells (OSCs) as electrodes. In inverted OSCs, ITO is usually employed as a cathode, which should be modified by cathode buffer layers (CBLs) to achieve better contact with the active layers. In this paper, an amine group functionalized fullerene derivative (DMAPA-C60) is used as a CBL to modify the transparent cathode ITO in inverted OSCs based on PTB7 as a donor and PC71BM as an acceptor. Compared with traditional ZnO CBL, DMAPA-C60 exhibited comparable transmittance. OSCs based on DMAPA-C60 show much better device performance compared with their ZnO counterparts (power conversion efficiencies (PCEs) improved from 6.24 to 7.43%). This is mainly because a better contact between the DMAPA-C60 modified ITO and the active layer is formed, which leads to better electron transport and collection. Nanoscale morphologies also demonstrate that the surface of DMAPA-C60-modified ITO is plainer than the ZnO counterparts, which also leads to the better device performance.Entities:
Keywords: ZnO; cathode buffer layer (CBL); fullerene derivative; organic solar cell (OSC); transparent conducting material
Year: 2017 PMID: 28891990 PMCID: PMC5615718 DOI: 10.3390/ma10091064
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1(a) Chemical structures of PTB7, PC71BM, and DMAPA-C60; (b) Device structure of the inverted OSC.
Figure 2(a) UV-Vis absorption spectra of ZnO and DMAPA-C60 films; (b) Transmittance spectra of ITO, ITO/DMAPA-C60, and ITO/ZnO films.
Device performances of OSCs based on DMAPA-C60 with different DMAPA-C60 concentrations.
| DMAPA-C60 (mg/mL) | FF (%) | PCE (%) | |||
|---|---|---|---|---|---|
| Best | Average a | ||||
| 1 | 0.69 | 14.2 | 57.3 | 5.61 | 5.48 |
| 1.5 | 0.69 | 14.3 | 63.4 | 6.26 | 6.1 |
| 2 | 0.70 | 15.7 | 65.7 | 7.43 | 7.27 |
| 2.5 | 0.70 | 15.4 | 61.4 | 6.62 | 6.45 |
| 3 | 0.69 | 14.8 | 62.9 | 6.42 | 6.29 |
a The average PCE was obtained from 25 devices.
Figure 3(a) J-V curves, (b) EQE curves and, (c) Dark J-V curves of OSCs based on different CBLs.
Device performances of OSCs based on different CBLs.
| Structure | FF (%) | PCE (%) | RS (Ω·cm−2) | RSH (Ω·cm−2) | |||
|---|---|---|---|---|---|---|---|
| Best | Average a | ||||||
| ITO | 0.69 | 12.0 | 58.5 | 4.93 | 4.59 | 7.03 | 427.3 |
| ITO/DMAPA-C60 | 0.70 | 15.7 | 65.7 | 7.43 | 7.27 | 3.50 | 580.2 |
| ITO/ZnO | 0.71 | 12.8 | 66.9 | 6.24 | 6.01 | 6.22 | 685.4 |
a The average PCE was obtained from 25 devices.
Figure 4AFM height images (3 × 3 μm2) of (a) ITO, (b) DMAPA-C60-decorated ITO, and (c) ZnO-decorated ITO.
Figure 5Stability curves of ZnO and DMAPA- C60 devices under continuous heating at 130 °C for 120 min.