Efficiency Roll‐Off in Light‐Emitting Electrochemical Cells

Author:

Zhang Xiaoying1ORCID,Ràfols‐Ribé Joan12ORCID,Mindemark Jonas3ORCID,Tang Shi12,Lindh Mattias4ORCID,Gracia‐Espino Eduardo1,Larsen Christian12ORCID,Edman Ludvig125ORCID

Affiliation:

1. The Organic Photonics and Electronics Group Department of Physics Umeå University Umeå SE‐90187 Sweden

2. LunaLEC AB Umeå University Umeå SE‐90187 Sweden

3. Department of Chemistry − Ångström Laboratory Uppsala University Uppsala SE‐751 21 Sweden

4. Sustainable Resource Conversion unit, Biorefinery and Energy department, RISE Research Institutes of Sweden AB Storgatan 65 Umeå SE‐90330 Sweden

5. Wallenberg Initiative Materials Science for Sustainability Department of Physics Umeå University Umeå SE‐90187 Sweden

Abstract

AbstractUnderstanding “efficiency roll‐off” (i.e., the drop in emission efficiency with increasing current) is critical if efficient and bright emissive technologies are to be rationally designed. Emerging light‐emitting electrochemical cells (LECs) can be cost‐ and energy‐efficiently fabricated by ambient‐air printing by virtue of the in situ formation of a p‐n junction doping structure. However, this in situ doping transformation renders a meaningful efficiency analysis challenging. Herein, a method for separation and quantification of major LEC loss factors, notably the outcoupling efficiency and exciton quenching, is presented. Specifically, the position of the emissive p‐n junction in common singlet‐exciton emitting LECs is measured to shift markedly with increasing current, and the influence of this shift on the outcoupling efficiency is quantified. It is further verified that the LEC‐characteristic high electrochemical‐doping concentration renders singlet‐polaron quenching (SPQ) significant already at low drive current density, but also that SPQ increases super‐linearly with increasing current, because of increasing polaron density in the p‐n junction region. This results in that SPQ dominates singlet‐singlet quenching for relevant current densities, and significantly contributes to the efficiency roll‐off. This method for deciphering the LEC efficiency roll‐off can contribute to a rational realization of all‐printed LEC devices that are efficient at highluminance.

Funder

Vetenskapsrådet

Energimyndigheten

Knut och Alice Wallenbergs Stiftelse

European Research Council

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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