Electrodeposition of Cu on PEDOT for a Hybrid Solid-State Electronic Device

Surfaces Pub Date : 2021-05-24 DOI:10.3390/SURFACES4020015
Martina Vizza, Giulio Pappaianni, Walter Giurlani, A. Stefani, R. Giovanardi, M. Innocenti, C. Fontanesi
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引用次数: 6

Abstract

Conductive polymers are nowadays attracting great attention for their peculiar mechanical, electrical and optical proprieties. In particular, PEDOT can be used in a wide range of innovative applications, from electroluminescent devices to photovoltaics. In this work, the electrochemical deposition of 3,4 ethylenedioxythiophene (EDOT) was performed on various substrates (ITO, thin films of gold and palladium on silicon wafers) by means of both potentiostatic and potentiodynamic techniques. This was intended to further expand the applications of electrochemically deposited PEDOT, particularly regarding the preparation of thin films in tight contact with electrode surfaces. This allows one to obtain systems prone to be used as electrodes in stacked devices. Chronoamperometric experiments were performed to study the nucleation and growth process of PEDOT. SEM, ESEM and AFM analysis allowed the characterization of the morphology of the polymeric films obtained. Raman and visible spectroscopy confirmed the high-quality of the coatings on the different substrates. Then, the PEDOT films were used as the base material for the further electrodeposition of a copper layer. In this way, a hybrid electronic device was obtained, by using electrochemical methods only. The high conductivity and ohmic behavior of the device were confirmed over a wide range of frequencies with electrical impedance spectroscopy analysis.
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混合固态电子器件PEDOT上电沉积Cu的研究
导电性聚合物因其独特的机械、电学和光学特性而受到广泛关注。特别是,PEDOT可以用于广泛的创新应用,从电致发光器件到光伏。在这项工作中,利用恒电位和动电位技术在不同的衬底(ITO,硅晶片上的金和钯薄膜)上进行了3,4乙烯二氧噻吩(EDOT)的电化学沉积。这是为了进一步扩大电化学沉积PEDOT的应用,特别是在制备与电极表面紧密接触的薄膜方面。这使得人们可以获得易于用作堆叠设备中电极的系统。通过计时电流实验研究了PEDOT的成核和生长过程。SEM, ESEM和AFM分析可以表征所获得的聚合物膜的形态。拉曼光谱和可见光谱证实了不同基材上涂层的质量。然后,利用PEDOT薄膜作为基底材料进一步电沉积铜层。这样,仅用电化学方法就得到了一种混合电子器件。通过电阻抗谱分析,证实了该器件在宽频率范围内的高导电性和欧姆行为。
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