| Literature DB >> 32344608 |
Donggu Lee1, Junmo Kim1, Gyeongtae Park1, Hyeong Woo Bae1, Myungchan An1, Jun Young Kim2.
Abstract
Organic solar cells (OSCs) are promising renewable energy sources for replacing fossil fuels. The power conversion efficiency (PCE) of OSCs has increased based on tremendous effort in material and device engineering. Still, the stability of OSC, such as long lifetime, negative temperature coefficient, must be enhanced for commercialization. In this study, we investigated OSC performance at a high operating temperature near 300-420 K, which are typical temperature regions in photovoltaic applications, with a different hole-extraction layer (HEL). The metal oxide-based HEL, MoO3, exhibited stable operating properties with a PCE drop rate of -0.13%/°C, as compared to polymeric HEL, PEDOT:PSS (-0.20%/°C). This performance reduction of polymeric HEL originated from the degradation of the interface in contact with PEDOT:PSS, as compared to the robust inorganic metal oxide HEL.Entities:
Keywords: MoO3; hole-extraction layer; molybdenum oxide; operating temperature; polymer solar cell
Year: 2020 PMID: 32344608 PMCID: PMC7240709 DOI: 10.3390/polym12040992
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1(a) Device structure and (b) energy band diagram of organic solar cell (OSC) with different hole-extraction layers (HELs).
Figure 2Current density (J)-voltage (V) characteristics of OSCs with various temperatures using (a) PEDOT:PSS and (b) MoO3 as HEL under 1-sun illumination. The inset illustrates the enlarged fourth quadrant area of the J-V curve.
Performance parameters of OSCs as a function of operating temperature using PEDOT:PSS and MoO3 as HEL under 1-sun illumination.
| HEL | Temp. (°C) | FF (%) | PCE (%) | ||
|---|---|---|---|---|---|
| PEDOT:PSS | 27 (RT) | 9.65 | 0.59 | 57.1 | 3.27 |
| 57 | 9.18 | 0.58 | 57.6 | 3.08 | |
| 87 | 9.08 | 0.57 | 57.6 | 2.98 | |
| 117 | 8.86 | 0.55 | 56.7 | 2.76 | |
| 147 | 8.75 | 0.53 | 54.0 | 2.50 | |
| MoO3 | 27 (RT) | 9.27 | 0.61 | 66.7 | 3.77 |
| 57 | 9.17 | 0.60 | 65.5 | 3.58 | |
| 87 | 9.17 | 0.58 | 64.5 | 3.44 | |
| 117 | 9.18 | 0.57 | 63.3 | 3.30 | |
| 147 | 9.15 | 0.55 | 62.0 | 3.14 |
Figure 3(a) JSC and fill factor (FF), (b) power conversion efficiency (PCE) and VOC, (c) RS and RSh, and (d) Normalized PCE characteristics of OSCs with various temperatures.
Figure 4Light intensity dependence of (a, b) JSC and (c, d) VOC with PEDOT:PSS (left) and MoO3 (right) as HELs. Dotted lines denote fitting lines. Jsc was fitted according to JSC ~ (Plight)α, and VOC was fitted logarithmically with light intensity (ln(Plight)). The fitting results are below each set of curves.