AI Article Synopsis

  • When the work function of electrodes in organic solar cells changes, it can lead to a stable contact known as Fermi-level pinning, followed by an Ohmic transition that affects performance metrics like open-circuit voltage (V) and fill factor (FF).
  • Researchers found that as they adjusted the work function further, they could slightly increase V and FF, suggesting that power conversion efficiency (PCE) can still be optimized even after reaching a plateau.
  • The study used PBDTTPD:PCBM solar cells to demonstrate these effects, illustrating how tuning the work function enhances the semiconductor's built-in potential and carrier mobility.

Article Abstract

As electrode work function rises or falls sufficiently, the organic semiconductor/electrode contact reaches Fermi-level pinning, and then, few tenths of an electron-volt later, Ohmic transition. For organic solar cells, the resultant flattening of open-circuit voltage (V) and fill factor (FF) leads to a 'plateau' that maximizes power conversion efficiency (PCE). Here, we demonstrate this plateau in fact tilts slightly upwards. Thus, further driving of the electrode work function can continue to improve V and FF, albeit slowly. The first effect arises from the coercion of Fermi level up the semiconductor density-of-states in the case of 'soft' Fermi pinning, raising cell built-in potential. The second effect arises from the contact-induced enhancement of majority-carrier mobility. We exemplify these using PBDTTPD:PCBM solar cells, where PBDTTPD is a prototypal face-stacked semiconductor, and where work function of the hole collection layer is systematically 'tuned' from onset of Fermi-level pinning, through Ohmic transition, and well into the Ohmic regime.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8047006PMC
http://dx.doi.org/10.1038/s41467-021-22358-yDOI Listing

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