Effects of Processing‐Induced Contamination on Organic Electronic Devices

Author:

Simatos Dimitrios12ORCID,Jacobs Ian E.1ORCID,Dobryden Illia3ORCID,Nguyen Małgorzata1,Savva Achilleas4ORCID,Venkateshvaran Deepak1ORCID,Nikolka Mark1ORCID,Charmet Jérôme5ORCID,Spalek Leszek J.1ORCID,Gicevičius Mindaugas1ORCID,Zhang Youcheng1ORCID,Schweicher Guillaume6ORCID,Howe Duncan J.2ORCID,Ursel Sarah1,Armitage John1,Dimov Ivan B.7ORCID,Kraft Ulrike8ORCID,Zhang Weimin9,Alsufyani Maryam10ORCID,McCulloch Iain910ORCID,Owens Róisín M.4ORCID,Claesson Per M.11ORCID,Knowles Tuomas P. J.2ORCID,Sirringhaus Henning1ORCID

Affiliation:

1. Optoelectronics Group Cavendish Laboratory University of Cambridge Cambridge CB3 0HE UK

2. Yusuf Hamied Department of Chemistry University of Cambridge Cambridge CB2 1EW UK

3. RISE Research Institutes of Sweden Division of Bioeconomy and Health Department of Material and Surface Design RISE Research Institutes of Sweden 11486 Stockholm Sweden

4. Department of Chemical Engineering and Biotechnology University of Cambridge Cambridge CB3 OAS UK

5. School of Engineering−HE‐Arc Ingénierie HES‐SO University of Applied Sciences Western Switzerland 2000 Neuchâtel Switzerland

6. Laboratoire de Chimie des Polymères Faculté des Sciences Université Libre de Bruxelles (ULB) 1050 Bruxelles Belgium

7. Electrical Engineering Division Department of Engineering University of Cambridge Cambridge CB3 0FA UK

8. Department of Molecular Electronics Max Planck Institute for Polymer Research 55128 Mainz Germany

9. Physical Science and Engineering Division King Abdullah University of Science and Technology (KAUST) Thuwal 23955‐6900 Saudi Arabia

10. Department of Chemistry University of Oxford Oxford OX1 3TA UK

11. KTH Royal Institute of Technology School of Engineering Sciences in Chemistry Biotechnology and Health Department of Chemistry Division of Surface and Corrosion Science 10044 Stockholm Sweden

Abstract

AbstractOrganic semiconductors are a family of pi‐conjugated compounds used in many applications, such as displays, bioelectronics, and thermoelectrics. However, their susceptibility to processing‐induced contamination is not well understood. Here, it is shown that many organic electronic devices reported so far may have been unintentionally contaminated, thus affecting their performance, water uptake, and thin film properties. Nuclear magnetic resonance spectroscopy is used to detect and quantify contaminants originating from the glovebox atmosphere and common laboratory consumables used during device fabrication. Importantly, this in‐depth understanding of the sources of contamination allows the establishment of clean fabrication protocols, and the fabrication of organic field effect transistors (OFETs) with improved performance and stability. This study highlights the role of unintentional contaminants in organic electronic devices, and demonstrates that certain stringent processing conditions need to be met to avoid scientific misinterpretation, ensure device reproducibility, and facilitate performance stability. The experimental procedures and conditions used herein are typical of those used by many groups in the field of solution‐processed organic semiconductors. Therefore, the insights gained into the effects of contamination are likely to be broadly applicable to studies, not just of OFETs, but also of other devices based on these materials.

Funder

Engineering and Physical Sciences Research Council

Fonds De La Recherche Scientifique - FNRS

Publisher

Wiley

Subject

General Materials Science,General Chemistry

Reference67 articles.

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