On the modeling of organic electrochemical transistors

Lukas M. Bongartz, Matteo Cucchi, K. Leo, H. Kleemann
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Abstract

Due to their synaptic functionality based on interacting electronic and ionic charge carriers, organic electrochemical transistors (OECTs) appeal as highly attractive candidates for a new generation of organic neuromorphic devices. Despite their acknowledged application potential, little is still known about the underlying physics and traditional transistor models fail to accurately describe the phenomena observed. This deficiency comes in part from the fact that such models are largely based on an electrostatic approach for metal-oxide-semiconductor field-effect transistors (MOSFETs), which is a very strong abstraction to the volumetric and complex processes in OECTs. On the other hand, material studies reveal the potential of an alternative approach, taking into account the electrochemical processes by means of thermodynamics and thus considering the OECTs intricacy. These two approaches oppose each other in explaining OECTs, neither of which can claim a comprehensive explanation of the transistor on its own so far. A unification of the two sides, on the other hand, could come much closer to a substantial explanation and provide a more accurate picture of reality. After giving a short overview of the most significant concepts of the two explanatory directions, a framework is presented that might come very close to this merger, as it accurately reproduces essential transfer properties of OECTs in terms of thermodynamics for the first time.
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有机电化学晶体管的建模研究
由于其基于相互作用的电子和离子载流子的突触功能,有机电化学晶体管(OECTs)成为新一代有机神经形态器件的极具吸引力的候选者。尽管它们具有公认的应用潜力,但人们对其潜在的物理特性知之甚少,传统的晶体管模型也无法准确描述所观察到的现象。这种缺陷部分来自于这样一个事实,即这些模型主要基于金属氧化物半导体场效应晶体管(mosfet)的静电方法,这是对OECTs中体积和复杂过程的非常强的抽象。另一方面,材料研究揭示了另一种方法的潜力,通过热力学考虑到电化学过程,从而考虑到OECTs的复杂性。这两种方法在解释oect时相互对立,到目前为止,这两种方法都不能单独对晶体管进行全面的解释。另一方面,双方的统一可能更接近于一个实质性的解释,并提供一个更准确的现实图景。在对两个解释方向中最重要的概念进行简要概述之后,提出了一个可能非常接近这种合并的框架,因为它第一次从热力学的角度准确地再现了OECTs的基本转移特性。
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