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A Hole-Selective Self-Assembled Monolayer for Both Efficient Perovskite and Organic Solar Cells. | LitMetric

AI Article Synopsis

  • Self-assembled monolayers (SAMs) are emerging as effective hole-selective layers in solar cell technologies, particularly for perovskite (PSC) and organic solar cells (OSC), due to their easy application, cost-effectiveness, and low material usage.
  • The study introduces a new SAM made with chlorinated phenothiazine and phosphonic acid, which has been carefully characterized and shows improved performance in solar cells compared to traditional materials like PEDOT:PSS and PTAA.
  • The designed SAM achieved impressive efficiencies of 17.4% for OSCs and 22.4% for PSCs, demonstrating its versatility and potential to simplify manufacturing processes in the solar cell industry.

Article Abstract

Self-assembled monolayers (SAMs) emerging as promising hole-selective layers (HSLs) are advantageous for facile processability, low cost, and minimal material consumption in the fabrication of both perovskite solar cells (PSCs) and organic solar cells (OSCs). However, owing to the different nature between perovskites and organic semiconductors, few SAMs were reported to effectively accommodate both PSCs and OSCs at the same time. In this regard, a universally applicable SAM that can accommodate both perovskites and organic semiconductors could be desirable for simplifying cell manufacturing, especially from an industrial perspective. In this work, we designed a SAM, by introducing chlorinated phenothiazine as the headgroup and linking with anchor phosphonic acid through a butyl chain. The resulting dense SAM was carefully characterized in terms of molecular bonding, surface morphology, and packing density, and its functions in OSCs and PSCs were discussed from the aspects of interactions with the absorber layer, energy level alignment, and charge-selective dipoles. The PM6:Y6-based OSCs with SAM as the HSL showed a superior performance to those with PEDOT:PSS. Furthermore, the universality was proved with an efficiency of 17.4% in the D18:Y6 system. In PSCs, the -based devices delivered a better performance of 22.4% than the PTAA-based devices (20.8%) with improved processability and reproducibility. This work represents a SAM with reasonably good compromise between the differing requirements of OSCs and PSCs.

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Source
http://dx.doi.org/10.1021/acs.langmuir.3c03610DOI Listing

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