4.8 Article

Morphological Stability and Performance of Polymer-Fullerene Solar Cells under Thermal Stress: The Impact of Photoinduced PC60BM Oligomerization

Journal

ACS NANO
Volume 8, Issue 2, Pages 1297-1308

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nn404687s

Keywords

organic solar cells; PCBM photo-oligomerization; PC60BM crystallization; solar cell thermal stability and lifetime

Funding

  1. Solvay SA
  2. EPSRC [EP/J500021/1, EP/J500239/1, EP/H040218/1]
  3. EPSRC [EP/J500021/1, EP/H040218/2] Funding Source: UKRI
  4. Engineering and Physical Sciences Research Council [EP/H040218/2, EP/H040218/1, EP/J500021/1] Funding Source: researchfish

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We report a general light processing strategy for organic solar cells (OSC) that exploits the propensity of the fullerene derivative PC60BM to photo-oligomerize, which is capable of both stabilizing the polymer: PC60BM active layer morphology and enhancing the device stability under thermal annealing. The observations hold for blends of PC60BM with an array of benchmark donor polymer systems, including P3HT, DPP-TT-T, PTB7, and PCDTBT. The morphology and kinetics of the thermally induced PC60BM crystallization within the blend films are investigated as a function of substrate and temperature. PC60BM nucleation rates on Si Ox substrates exhibit a pronounced peak profile with temperature, whose maximum is polymer and blend-composition dependent. Modest illumination (<10 mW/cm(2)) significantly suppresses nucleation, which is quantified as function of dose, but does not affect crystalline shape or growth, in the micrometer range. On PEDOT:PSS substrates, thermally induced PC60BM aggregation is observed on smaller (approximate to 100 nm) length scales, depending upon donor polymer, and also suppressed by light exposure. The concurrent thermal dissociation process of PC(60)BAM oligomers in blend films is also investigated and the activation energy of the fullerene-fullerene bond is estimated to be 0.96 +/- 0.04 eV. Following light processing, the thermal stability, and thus lifetime, of PCDTBT:PC60BM devices increases for annealing times up to 150 h. In contrast, PCDTBT:PC70BM OSCs are found to be largely light insensitive. The results are rationalized in terms of the suppression of PC60BM micro- and nanoscopic crystallization processes upon thermal annealing caused by photoinduced PC60BM oligomerization.

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