Photomultiplication Enabling Efficient Shortwave Infrared‐Sensitive Organic Upconversion Devices

Author:

Hu Wei‐Hsu12,Assunção João Pedro Ferreira12,Carvalho Rafael dos Santos3,Didier Elodie14,Diethelm Matthias5,Jenatsch Sandra6,Bachmann Dominik7,Shorubalko Ivan7,Cremona Marco3,Nüesch Frank12,Bauer Michael1,Hany Roland1ORCID

Affiliation:

1. Empa Swiss Federal Laboratories for Materials Science and Technology Laboratory for Functional Polymers Dübendorf CH‐8600 Switzerland

2. Institute of Materials Science and Engineering Ecole Polytechnique Fédérale de Lausanne EPFL Station 12 Lausanne CH‐1015 Switzerland

3. Optoelectronic Molecular Laboratory Physics Department Pontifical Catholic University of Rio de Janeiro PUC‐Rio Rio de Janeiro 224543‐970 Brazil

4. Institute of Chemistry and Chemical Engineering Ecole Polytechnique Fédérale de Lausanne EPFL Station 12 Lausanne CH‐1015 Switzerland

5. Empa Swiss Federal Laboratories for Materials Science and Technology Laboratory for Thin Films and Photovoltaics Dübendorf CH‐8600 Switzerland

6. Fluxim AG Katharina‐Sulzer‐Platz 2 Winterthur 8400 Switzerland

7. Empa Swiss Federal Laboratories for Materials Science and Technology Transport at Nanoscale Interfaces Laboratory Dübendorf CH‐8600 Switzerland

Abstract

AbstractOrganic upconverters made by integrating an infrared‐sensitive photodetector with a light‐emitting diode offer a low‐cost route to visualize images taken in the infrared. However, making such devices sufficiently efficient is challenging. Here, upconversion devices are demonstrated with an efficiency of 13.9% for converting infrared photons (980 nm, 5 mW cm−2) to visible photons (575 nm). Infrared photons are detected with a photomultiplication photodetector that includes a copper thiocyanate electron‐blocking/injection layer and an infrared‐sensitive squaraine dye dispersed (3 wt−%) in a fullerene matrix. At turn‐on, the detector achieves an external quantum efficiency of 1200% (at 1020 nm, −10 V, 44 µW cm−2). Photomultiplication occurs via hole trap‐induced injection of electrons. In the upconverter, these electrons are driven into the emitter and recombine with holes under visible light emission. During operation the photodetector current increases because, presumably, rearranging mobile ions in copper thiocyanate narrows the injection barrier. Thereby, the upconverter photoconversion efficiency gradually increases to 18.7%. The performance of the present upconverter is limited by the not‐yet‐ideal charge‐blocking/injection layer, which is too thick and blocks electrons in the dark insufficiently. With thin and compact charge‐blocking layers at hand, the device concept paves the way for widespread use in sensitive infrared imaging.

Funder

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Coordenação de Aperfeiçoamento de Pessoal de Nível Superior

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Publisher

Wiley

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