Soluble Ruthenium Phthalocyanines as Semiconductors for Organic Thin‐Film Transistors

Author:

García‐Calvo José123ORCID,Cranston Rosemary R.4ORCID,López‐Duarte Ismael5ORCID,Torres Tomás123ORCID,Lessard Benoît H.46ORCID

Affiliation:

1. Department of Organic Chemistry Campus de Cantoblanco Universidad Autónoma de Madrid 28049 Madrid Spain

2. Institute for Advanced Research in Chemical Sciences (IAdChem) Campus de Cantoblanco Universidad Autónoma de Madrid 28049 Madrid Spain

3. IMDEA-Nanociencia Campus de Cantoblanco, c/Faraday 9 28049 Madrid Spain

4. Department of Chemical and Biological Engineering University of Ottawa 161 Louis Pasteur Ottawa Canada

5. Department of Chemistry in Pharmaceutical Sciences Ciudad Universitaria Complutense University of Madrid Ramón y Cajal Square 28040 Madrid Spain

6. School of Electrical Engineering and Computer Science University of Ottawa 800 King Edward Ave Ottawa Canada

Abstract

AbstractRuthenium phthalocyanine (RuPcs) are multipurpose compounds characterized by their remarkable reactivity and photoelectronic properties, which yield a broad synthetic scope and easy derivatization at the axial position. However, RuPcs have been underexplored for use in organic thin‐film transistors (OTFTs), and therefore new studies are necessary to provide basic insight and a first approach in this new application. Herein, two novel RuPc derivatives, containing axial pyridine substituents with aliphatic chains (RuPc(CO)(PyrSiC6) (1) and RuPc(PyrSiC6)2 (2), were synthesized, characterized, and tested as the organic semiconductor in OTFTs. RuPc thin‐films were characterized by X‐ray diffraction (XRD), and atomic force microscopy (AFM) to assess film morphology and microstructure. 1 displayed comparable p‐type device performance to other phthalocyanine‐based OTFTs of similar design, with an average field effect mobility of 2.08×10−3 cm2 V−1 s−1 in air and 1.36×10−3 cm2 V−1 s−1 in nitrogen, and threshold voltages from −11 V to −20 V. 2 was found to be non‐functional as the semiconductor in the device architecture used, likely as a result of significant differences in thin‐film formation. The results of this work illustrate a promising starting point for future development of RuPc electronic devices, particularly in this new family of OTFTs.

Funder

Natural Sciences and Engineering Research Council of Canada

Publisher

Wiley

Subject

Electrochemistry,Catalysis

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