Impact of Molecular Weight on the Ionic and Electronic Transport of Self‐Doped Conjugated Polyelectrolytes Relevant to Organic Electrochemical Transistors

Author:

Chae Sangmin1ORCID,Nguyen‐Dang Tung1,Chatsirisupachai Jirat12,Yi Ahra13,Vázquez Ricardo Javier45,Quek Glenn5,Promarak Vinich2,Kim Hyo Jung3,Bazan Guillermo C.45,Nguyen Thuc‐Quyen1ORCID

Affiliation:

1. Center for Polymers and Organic Solids (CPOS) and Department of Chemistry & Biochemistry University of California Santa Barbara CA 93106 USA

2. Department of Materials Science and Engineering School of Molecular Science and Engineering Vidyasirimedhi Institute of Science and Technology Wangchan Rayong 21210 Thailand

3. Department of Organic Material Science and Engineering School of Chemical Engineering Pusan National University Busan 46241 Republic of Korea

4. Institute for Functional Intelligent Materials National University of Singapore Singapore 117544 Singapore

5. Departments of Chemistry and Chemical Engineering National University of Singapore Singapore 119077 Singapore

Abstract

AbstractOrganic electrochemical transistors (OECTs) have gained considerable attention due to their potential applications in emerging biosensor platforms. The use of conjugated polyelectrolytes (CPEs) as active materials in OECTs is particularly advantageous owing to their functional, water‐processable, and biocompatible nature, as well as their tunable electronic and ionic transport properties. However, there exists a lack of systematic studies of the structure‐property relationships of these materials with respect to OECT performance. This study shows how by tuning the molecular weight of self‐doped CPE (CPE‐K) it is possible to fabricate OECTs with a µC* value of 14.7 F cm−1 V−1 s−1, one order of magnitude higher than previously reported CPE‐based devices. Furthermore, OECTs with a transconductance of 120 mS are demonstrated via device engineering. While CPE‐K batches with different molecular weights show good doping behavior and high volumetric capacitance, as confirmed by spectroelectrochemistry and electrochemical impedance spectroscopy, the medium molecular weight possesses the highest carrier mobility of ≈0.1 cm2 V−1 s−1 leading to the highest transconductance. The enhanced charge transport is due to a favorable charge percolation pathway, as revealed by the combination of X‐ray analysis and conductive atomic force microscope. These insights provide guidelines for further improving the performance of CPE‐based OECTs.

Funder

National Science Foundation

Ministry of Education - Singapore

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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