The Effect of Organic Semiconductor Electron Affinity on Preventing Parasitic Oxidation Reactions Limiting Performance of n‐Type Organic Electrochemical Transistors

Author:

Alsufyani Maryam12ORCID,Moss Benjamin3,Tait Claudia E.1,Myers William K.4,Shahi Maryam5,Stewart Katherine6,Zhao Xiaolei7,Rashid Reem B.8,Meli Dilara9,Wu Ruiheng10,Paulsen Bryan D.8,Thorley Karl11,Lin Yuanbao12ORCID,Combe Craig2,Kniebe‐Evans Charlie1,Inal Sahika2,Jeong Sang Young13,Woo Han Young13,Ritchie Grant1,Kim Ji‐Seon6,Rivnay Jonathan89,Paterson Alexandra5,Durrant James R3,McCulloch Iain1214ORCID

Affiliation:

1. Department of Chemistry Chemistry Research Laboratory University of Oxford Oxford OX1 3TA UK

2. King Abdullah University of Science and Technology (KAUST) Thuwal 23955‐6900 Saudi Arabia

3. Department of Chemistry and Centre for Processable Electronics Molecular Science Research Hub Imperial College London London W12 0BZ UK

4. Centre for Advanced ESR Inorganic Chemistry Laboratory University of Oxford South Parks Road Oxford OX1 3QR UK

5. Department of Chemical and Materials Engineering University of Kentucky Lexington KY 40506‐0055 USA

6. Department of Physics and the Centre for Processable Electronics Imperial College London Prince Consort Road London SW7 2AZ UK

7. Department of Electrical Engineering Shanghai Jiao Tong University Shanghai 200240 China

8. Department of Biomedical Engineering Northwestern University Evanston IL 60208 USA

9. Department of Materials Science & Engineering Northwestern University Evanston IL 60208 USA

10. Department of Chemistry Northwestern University Evanston IL 60208 USA

11. Department of Chemistry University of Kentucky Lexington KY 40506‐0055 USA

12. College of Education Sciences The Hong Kong University of Science and Technology Guangzhou 510000 CN

13. Department of Chemistry Korea University Seoul 02841 Republic of Korea

14. Andlinger Center for Energy and the Environment and Department of Electrical and Computer Engineering Princeton University Princeton NJ 08544 USA

Abstract

AbstractA key challenge in the development of organic mixed ionic‐electronic conducting materials (OMIEC) for high performance electrochemical transistors is their stable performance in ambient. When operating in aqueous electrolyte, potential reactions of the electrochemically injected electrons with air and water could hinder their persistence, leading to a reduction in charge transport. Here, the impact of deepening the LUMO energy level of a series of electron‐transporting semiconducting polymers is evaluated, and subsequently rendering the most common oxidation processes of electron polarons thermodynamically unfavorable, on organic electrochemical transistors (OECTs) performance. Employing time resolved spectroelectrochemistry with three analogous polymers having varying electron affinities (EA), it is found that an EA below the thermodynamic threshold for oxidation of its electron polarons by oxygen significantly improves electron transport and lifetime in air. A polymer with a sufficiently large EA and subsequent thermodynamically unfavorable oxidation of electron polarons is reported, which is used as the semiconducting layer in an OECT, in its neutral and N‐DMBI doped form, resulting in an excellent and air‐stable OECT performance. These results show a general design methodology to avoid detrimental parasitic reactions under ambient conditions, and the benefits that arise in electrical performance.

Funder

Engineering and Physical Sciences Research Council

Royal Society

Publisher

Wiley

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