Nanodiamonds as Charge Extraction Layer in Organic Solar Cells: The Impact of the Nanodiamond Surface Chemistry

Author:

Sokeng Djoumessi Aurelien12ORCID,Sichwardt Anastasia12,Miliaieva Daria3,Čermák Jan3,Schaal Maximilian4,Otto Felix4,Stehlík Štěpán35,Kuliček Jaroslav6,Nádaždy Vojtech78,Fritz Torsten4,Kromka Alexander3,Rezek Bohuslav6,Schubert Ulrich S.12,Hoppe Harald12

Affiliation:

1. Laboratory of Organic and Macromolecular Chemistry (IOMC) Friedrich Schiller University Jena 07743 Jena Germany

2. Center for Energy and Environmental Chemistry Jena (CEEC Jena) Friedrich Schiller University Jena 07743 Jena Germany

3. Institute of Physics Czech Academy of Sciences 162 00 Prague 6 Czech Republic

4. Institute of Solid State Physics Friedrich Schiller University Jena 07743 Jena Germany

5. New Technologies – Research Centre University of West Bohemia 306 14 Pilsen Czech Republic

6. Faculty of Electrical Engineering Czech Technical University in Prague 166 27 Prague Czech Republic

7. Institute of Physics Slovak Academy of Sciences 845 11 Bratislava Slovak Republic

8. Centre for Advanced Material Application Slovak Academy of Sciences 845 11 Bratislava Slovak Republic

Abstract

Diamond nanoparticles so‐called nanodiamonds (NDs) have recently experienced raising scientific interest due to interesting optical and electronic properties, nontoxicity, biocompatibility, and large surface area. Another significant feature of NDs is the versatility of the surface chemistry, where various functional groups can be attached. This provides an excellent platform for adjusting NDs properties and functions for many applications including in photovoltaic devices. Herein, high‐pressure high‐temperature (HPHT) NDs are tested as charge extraction material in organic solar cells using various surface chemistries: as‐received (HPHT ND‐ar), oxidized (HPHT ND‐O), and hydrogenated (HPHT ND‐O‐H) NDs. Despite the high work function values (≈5.3 eV) of HPHT ND‐ar and HPHT ND‐O, which make these materials normally suitable for hole extraction, devices made with them failed. In contrast, the work function decreases upon hydrogenation (≈4.5 eV) of the beforehand oxidized NDs, making them interesting for electron extraction. By employing such HPHT ND‐O‐H for electron extraction layers, PBDB‐T:ITIC‐based devices reach 77%, while PM6:Y6‐based devices reach even 85% of the performance when process on standard ZnO electron transport layers. Improvement of the film‐forming qualities of this new electron extraction material is expected to further improve the performance.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Electrical and Electronic Engineering,Energy Engineering and Power Technology,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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