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On the Impact of Bimolecular Recombination on Time-Delayed Collection Field Measurements and How to Minimize Its Effect

  • Benno Gerber
  • , Nurlan Tokmoldin
  • , Oskar J. Sandberg
  • , Elifnaz Sağlamkaya
  • , Bowen Sun
  • , Safa Shoaee
  • , Dieter Neher

Forskningsoutput: TidskriftsbidragArtikelVetenskapligPeer review

7 Citeringar (Scopus)
46 Nedladdningar (Pure)

Sammanfattning

The time-delayed collection field (TDCF) technique is a popular method to quantify the field and temperature dependences of free charge generation in organic solar cells. Because the method relies on the extraction of photogenerated charge carriers, bimolecular recombination not only between the photogenerated carriers but also between the photogenerated and dark-injected carriers affects its accuracy, particularly at forward bias. In this work, drift–diffusion simulations are employed to quantify the recombination losses in conventional and modified TDCF measurements, where the latter technique intends to reduce the impact of dark injection. It is shown that parameters such as the generation profile, carrier mobilities, and effective density of states affect the recombination losses in both measurements. Importantly, modified TDCF enables to reduce the recombination losses at forward bias, especially beyond the open-circuit voltage. However, conventional TDCF is preferable for studies at reverse bias due to a better depletion of the active layer prior to the emergence of the photogenerated carriers. Measurements on a ZR1:Y6 blend with fast recombination are in good agreement with the simulation results. This work shows that artifacts in TDCF measurements related to non-geminate recombination can be accounted for and minimized through an informed choice of the experimental conditions.

OriginalspråkEngelska
Artikelnummer2400083
TidskriftSolar Rrl
Volym8
Nummer10
DOI
StatusPublicerad - 1 apr. 2024
MoE-publikationstypA1 Tidskriftsartikel-refererad

Finansiering

This work was supported by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation; project numbers SH 1660/1\u20101 and NE 410/20\u20101). O.J.S. acknowledges funding from the Research Council of Finland through project #357196.

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