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通过二次掺杂揭示PEDOT:PSS/PVA薄膜提高的灵敏度及其在应变传感器中的应用。

Revealing the improved sensitivity of PEDOT:PSS/PVA thin films through secondary doping and their strain sensors application.

作者信息

Ahmad Ruzaidi Dania Adila, Maurya Muni Raj, Yempally Swathi, Abdul Gafoor Sajeel, Geetha Mithra, Che Roslan Nazreen, Cabibihan John-John, Kumar Sadasivuni Kishor, Mahat Mohd Muzamir

机构信息

Center for Advanced Materials, Qatar University P. O. Box 2713 Doha Qatar

Faculty of Applied Sciences, Universiti Teknologi MARA Shah Alam 40450 Malaysia

出版信息

RSC Adv. 2023 Mar 13;13(12):8202-8219. doi: 10.1039/d3ra00584d. eCollection 2023 Mar 8.

Abstract

The field of strain sensing involves the ability to measure an electrical response that corresponds to a strain. The integration of synthetic and conducting polymers can create a flexible strain sensor with a wide range of applications, including soft robotics, sport performance monitoring, gaming and virtual reality, and healthcare and biomedical engineering. However, the use of insulating synthetic polymers can impede the semiconducting properties of sensors, which may reduce sensor sensitivity. Previous research has shown that the doping process can significantly enhance the electrical performance and ionic conduction of conducting polymers, thereby strengthening their potential for use in electronic devices. However the full effects of secondary doping on the crystallinity, stretchability, conductivity, and sensitivity of conducting polymer blends have not been studied. In this study, we investigated the effects of secondary doping on the properties of poly(3,4-ethylenedioxythiophene):poly(styrene sulfonate)/poly(vinyl alcohol) (PEDOT:PSS/PVA) polymer blend thin films and their potential use as strain sensors. The thin films were prepared using a facile drop-casting method. Morphology analysis using profilometry and atomic force microscopy confirmed the occurrence of phase segregation and revealed surface roughness values. This evidence provided a comprehensive understanding of the chemical interactions and physical properties of the thin films, and the effects of doping on these properties. The best films were selected and applied as sensitive strain sensors. EG-PEDOT:PSS/PVA thin films showing a significant increase of conductivity values from the addition of 1 vol% to 12 vol% addition, with conductivity values of 8.51 × 10 to 9.42 × 10 S cm. Our 12% EG-PEDOT:PSS/PVA sensors had the highest GF value of 2000 too. We compared our results with previous studies on polymeric sensors, and it was found that our sensors quantitatively had better GF values. Illustration that demonstrates the DMSO and EG dopant effects on PEDOT:PSS structure through bonding interaction, crystallinity, thermal stability, surface roughness, conductivity and stretchability was also provided. This study suggests a new aspect of doping interaction that can enhance the conductivity and sensitivity of PEDOT:PSS for device applications.

摘要

应变传感领域涉及测量与应变相对应的电响应的能力。合成聚合物与导电聚合物的结合能够制造出一种具有广泛应用的柔性应变传感器,这些应用包括软体机器人技术、运动表现监测、游戏与虚拟现实以及医疗保健和生物医学工程。然而,绝缘合成聚合物的使用可能会阻碍传感器的半导体性能,这可能会降低传感器的灵敏度。先前的研究表明,掺杂过程能够显著提高导电聚合物的电性能和离子传导性,从而增强其在电子设备中的应用潜力。然而,二次掺杂对导电聚合物共混物的结晶度、拉伸性、导电性和灵敏度的全面影响尚未得到研究。在本研究中,我们研究了二次掺杂对聚(3,4-乙撑二氧噻吩):聚(苯乙烯磺酸盐)/聚乙烯醇(PEDOT:PSS/PVA)聚合物共混薄膜性能的影响及其作为应变传感器的潜在用途。这些薄膜采用简便的滴铸法制备。使用轮廓仪和原子力显微镜进行的形态分析证实了相分离的发生,并揭示了表面粗糙度值。这些证据提供了对薄膜的化学相互作用和物理性质以及掺杂对这些性质影响的全面理解。挑选出最佳的薄膜并将其用作灵敏应变传感器。EG-PEDOT:PSS/PVA薄膜在添加量从1体积%增加到12体积%时,电导率值显著增加,电导率值为8.51×10至9.42×10 S/cm。我们的12% EG-PEDOT:PSS/PVA传感器的最高GF值也达到了2000。我们将我们的结果与先前关于聚合物传感器的研究进行了比较,发现我们的传感器在定量方面具有更好的GF值。还提供了通过键合相互作用、结晶度、热稳定性、表面粗糙度、导电性和拉伸性来展示二甲基亚砜和乙二醇掺杂剂对PEDOT:PSS结构影响的示意图。本研究提出了掺杂相互作用的一个新方面,其可以提高PEDOT:PSS在器件应用中的导电性和灵敏度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bfbe/10009655/db141ea6f912/d3ra00584d-f1.jpg

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