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有机电化学晶体管中的非理想能斯特行为:基本过程与理论

Non-ideal nernstian behavior in organic electrochemical transistors: fundamental processes and theory.

作者信息

Feitosa Bianca de Andrade, Torres Bruno Bassi Millan, Luginieski Marcos, Coutinho Douglas José, Faria Gregório Couto

机构信息

Instituto de Física de São Carlos (USP), São Carlos-SP, 13566-590, Brazil.

Escola de Engenharia de São Carlos (USP), São Carlos-SP, 13563-120, Brazil.

出版信息

Mater Horiz. 2024 Nov 25;11(23):6007-6018. doi: 10.1039/d4mh00758a.

Abstract

Despite the successful implementation of organic electrochemical based devices (OEDs), fundamental processes that regulate their operations and sensing capabilities, specifically those related to ion-to-electron transduction, remain unclear. Indeed, there is still a lack of fundamental models to explain the steady-state and transient characteristics of OEDs, associating fundamentals of the physical-chemistry of the pair polymer-electrolyte with the output performance of such devices. In this study, we bring new highlights to a thermodynamic-based model that qualitatively and quantitatively describes OEDs operation, with a special focus on the organic electrochemical transistor (OECT). In this context, we introduce novel interpretations for traditional drain current models, grounded in thermodynamic and electrochemical principles. The model fitting parameters are correlated to the physical and chemical properties of the polymer-electrolyte pair, and it has been shown to explain trends observed in experimental results from the literature. Moreover, our model reveals that a non-Nerstian electrochemical behavior dominates OECT operation. Also, by analyzing experimental data, we are able to generate guidelines for material design and device development, targeting highly sensitive electrochemical biosensors and devices.

摘要

尽管基于有机电化学的器件(OEDs)已成功实现,但调节其操作和传感能力的基本过程,特别是那些与离子到电子转换相关的过程,仍不清楚。事实上,仍然缺乏基本模型来解释OEDs的稳态和瞬态特性,将聚合物 - 电解质对的物理化学基本原理与此类器件的输出性能联系起来。在本研究中,我们为基于热力学的模型带来了新亮点,该模型定性和定量地描述了OEDs的操作,特别关注有机电化学晶体管(OECT)。在此背景下,我们基于热力学和电化学原理,对传统漏极电流模型引入了新颖的解释。模型拟合参数与聚合物 - 电解质对的物理和化学性质相关,并且已证明它可以解释文献中实验结果所观察到的趋势。此外,我们的模型表明,非能斯特电化学行为主导OECT的操作。而且,通过分析实验数据,我们能够为材料设计和器件开发生成指导方针,目标是高灵敏度的电化学生物传感器和器件。

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