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Highly conductive, transparent and metal-free electrodes with a PEDOT:PSS/SWNT bilayer for high-performance organic thin film transistors

DOI:10.1016/j.orgel.2019.01.008 期刊:Organic Electronics 出版年份:2019 更新时间:2025-09-23 15:23:52
摘要: Conductive organic materials including polymers, small molecules, and carbon nanotubes (CNTs) are a promising alternative to inorganic materials in electronic devices. Conventionally, organic electrodes employing CNTs are designed using functionalization of their surfaces or formation of nanocomposites with a conductive polymer. However, phase separation limits the concentration of CNTs in a polymer matrix, hindering the formation of highly dense CNT networks and leading to poor electrical conductivity. In this paper, we introduce bilayer electrodes comprising poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS) and single-walled CNTs (SWNTs) chemically modified by HNO3 treatment. Impressive conductivities of 2432 and 2438 S cm?1 are found for the SWNT/PEDOT:PSS (S/P) and PEDOT:PSS/SWNT (P/S) electrodes, respectively. Further, an increase in the work function of the electrodes after HNO3 treatment lowers the hole injection barrier, which facilitates hole injection from pentacene. The smooth surface of PEDOT:PSS also contributes to growth of large pentacene grains; consequently, the field-effect mobility of pentacene-based thin film transistors is 1.88 cm2 V?1 s?1 when the P/S electrode is employed. The metal-free electrodes also exhibit a high optical transparency of 88.7%, which suggests that they have great potential for applications in optoelectronics.
作者: Taehyung Lee,Woosung Kwon,Minwoo Park
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To develop highly conductive, transparent, and metal-free bilayer electrodes using PEDOT:PSS and SWNTs for high-performance organic thin film transistors, addressing issues of phase separation and poor conductivity in conventional CNT-polymer composites.

The bilayer electrodes exhibit high conductivity (up to 2438 S cm?1), transparency (88.7%), and improved device performance with a field-effect mobility of 1.88 cm2 V?1 s?1 for pentacene TFTs. HNO3 treatment enhances conductivity and work function, while the smooth PEDOT:PSS surface promotes large pentacene grains. The metal-free electrodes show potential for optoelectronic applications, with suppressed hysteresis and low contact resistance.

The study is limited to specific materials (PEDOT:PSS, SWNTs, pentacene) and HNO3 treatment conditions; scalability and environmental stability of the electrodes may need further investigation. The use of photolithography may not be suitable for all flexible or large-scale applications.

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