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Dramatic improvement in the stability and mechanism of high-performance inverted polymer solar cells featuring a solution-processed buffer layer.
- Source :
-
Nanoscale [Nanoscale] 2023 Feb 16; Vol. 15 (7), pp. 3375-3386. Date of Electronic Publication: 2023 Feb 16. - Publication Year :
- 2023
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Abstract
- In this study, we demonstrate inverted PTB7:PC <subscript>71</subscript> BM polymer solar cells (PSCs) featuring a solution-processed s-MoO <subscript>3</subscript> hole transport layer (HTL) that can, after thermal aging at 85 °C, retain their initial power conversion efficiency (PCE) for at least 2200 h. The T <subscript>80</subscript> lifetimes of the PSCs incorporating the novel s-MoO <subscript>3</subscript> HTL were up to ten times greater than those currently reported for PTB7- or low-band-gap polymer:PCBM PSCs, the result of the inhibition of burn-in losses and long-term degradation under various heat-equivalent testing conditions. We used X-ray photoelectron spectroscopy (XPS) to study devices containing thermally deposited t-MoO <subscript>3</subscript> and s-MoO <subscript>3</subscript> HTLs and obtain a mechanistic understanding of how the robust HTL is formed and how it prevented the PSCs from undergoing thermal degradation. Heat tests revealed that the mechanisms of thermal inter-diffusion and interaction of various elements within active layer/HTL/Ag electrodes controlled by the s-MoO <subscript>3</subscript> HTL were dramatically different from those controlled by the t-MoO <subscript>3</subscript> HTL. The new prevention mechanism revealed here can provide the conceptual strategy for designing the buffer layer in the future. The PCEs of PSCs featuring s-MoO <subscript>3</subscript> HTLs, measured in damp-heat (65 °C/65% RH; 85 °C per air) and light soaking tests, confirmed their excellent stability. Such solution-processed MoO <subscript>3</subscript> HTLs appear to have great potential as replacements for commonly used t-MoO <subscript>3</subscript> HTLs.
Details
- Language :
- English
- ISSN :
- 2040-3372
- Volume :
- 15
- Issue :
- 7
- Database :
- MEDLINE
- Journal :
- Nanoscale
- Publication Type :
- Academic Journal
- Accession number :
- 36722930
- Full Text :
- https://doi.org/10.1039/d2nr05847b