The role of colloidal plasmonic nanostructures in organic solar cells

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

  • C. R. Singh - , University of Bayreuth (Author)
  • T. Honold - , University of Bayreuth (Author)
  • T. P. Gujar - , University of Bayreuth (Author)
  • M. Retsch - , University of Bayreuth (Author)
  • A. Fery - , Leibniz Institute of Polymer Research Dresden (Author)
  • M. Karg - , University of Bayreuth, Heinrich Heine University Düsseldorf (Author)
  • M. Thelakkat - , University of Bayreuth (Author)

Abstract

Plasmonic particles can contribute via multiple processes to the light absorption process in solar cells. These particles are commonly introduced into organic solar cells via deposition techniques such as spin-coating or dip-coating. However, such techniques are inherently challenging to achieve homogenous surface coatings as they lack control of inter-particle spacing and particle density on larger areas. Here we introduce interface assisted colloidal self-assembly as a concept for the fabrication of well-defined macroscopic 2-dimensional monolayers of hydrogel encapsulated plasmonic gold nanoparticles. The monolayers showed a pronounced extinction in the visible wavelength range due to localized surface plasmon resonance with excellent optical homogeneity. Moreover this strategy allowed for the investigation of the potential of plasmonic monolayers at different interfaces of P3HT:PCBM based inverted organic solar cells. In general, for monolayers located anywhere underneath the active layer, the solar cell performance decreased due to parasitic absorption. However with thick active layers, where low hole mobility limited the charge transport to the top electrode, the plasmonic monolayer near that electrode spatially redistributed the light and charge generation close to the electrode led to an improved performance. This work systematically highlights the trade-offs that need to be critically considered for designing an efficient plasmonically enhanced organic solar cell.

Details

Original languageEnglish
Pages (from-to)23155-23163
Number of pages9
JournalPhysical Chemistry Chemical Physics
Volume18
Issue number33
Publication statusPublished - 2016
Peer-reviewedYes
Externally publishedYes