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一种用于有机薄膜晶体管(OTFT)传感器的高孔隙率导电复合栅电极。

A highly porous and conductive composite gate electrode for OTFT sensors.

作者信息

Yambem Soniya D, Burns Samantha, Arthur Joshua N, Timm Jana, Woodruff Maria A, Pandey Ajay K, Marschall Roland

机构信息

School of Chemistry Physics and Mechanical Engineering, Science and Engineering Faculty, Queensland University of Technology (QUT) Brisbane QLD 4000 Australia

Institute of Health and Biomedical Innovation, Queensland University of Technology (QUT) Kelvin Grove Queensland 4059 Australia.

出版信息

RSC Adv. 2019 Mar 4;9(13):7278-7284. doi: 10.1039/c9ra00148d. eCollection 2019 Mar 1.

Abstract

Ionic/protonic to electronic transducers based on organic thin film transistors have shown great promise for applications in bioelectronic interface devices and biosensors, and development of materials that exhibit mixed ionic/electronic conduction are an essential part of these devices. In this work, we investigated the proton sensing properties of an all solid-state and low voltage operating organic thin film transistor (OTFT) that uses the organic mixed conductor poly(3,4-ethylenedioxythiophene) doped with poly(styrene sulfonate) (PEDOT:PSS) as the gate electrode. To address the limited sensitivity due to the lack of porosity in PEDOT:PSS base sensors, we proposed a composite gate electrode material composed of PEDOT:PSS and proton conducting mesoporous SOH-Si-MCM-41 nanoparticles for improved proton sensitivity. The composite gate electrode doubles the proton sensitivity of the OTFT, indicating a clear advantage of adding SOH-Si-MCM-41 in the PEDOT:PSS gate. Moreover, the OTFTs with the composite gate electrode maintained OTFT characteristics similar to that of the PEDOT:PSS gated OTFT. A detailed and systematic study of the effect of variation in the composition of PEDOT:PSS:SOH-Si-MCM-41 on OTFT characteristics and sensing properties is carried out. Our results open up the possibility of combining inorganic nanomaterials with organic conductors in the development of highly efficient bioelectronic sensing platforms.

摘要

基于有机薄膜晶体管的离子/质子-电子换能器在生物电子接口设备和生物传感器应用中展现出了巨大潜力,而开发具有混合离子/电子传导特性的材料是这些设备的重要组成部分。在这项工作中,我们研究了一种全固态、低电压工作的有机薄膜晶体管(OTFT)的质子传感特性,该晶体管使用掺杂有聚(苯乙烯磺酸盐)(PEDOT:PSS)的有机混合导体聚(3,4-乙撑二氧噻吩)作为栅电极。为了解决基于PEDOT:PSS的基础传感器因缺乏孔隙率而导致的灵敏度有限的问题,我们提出了一种由PEDOT:PSS和质子传导性介孔SOH-Si-MCM-41纳米颗粒组成的复合栅电极材料,以提高质子灵敏度。复合栅电极使OTFT的质子灵敏度提高了一倍,这表明在PEDOT:PSS栅极中添加SOH-Si-MCM-41具有明显优势。此外,具有复合栅电极的OTFT保持了与PEDOT:PSS栅控OTFT相似的OTFT特性。我们对PEDOT:PSS:SOH-Si-MCM-41组成变化对OTFT特性和传感性能的影响进行了详细而系统的研究。我们的结果为在高效生物电子传感平台的开发中结合无机纳米材料与有机导体开辟了可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b38f/9061173/504c6fa01a48/c9ra00148d-f1.jpg

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