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糖基化聚噻吩力学性能的电化学调制

Electrochemical modulation of mechanical properties of glycolated polythiophenes.

作者信息

Abdel Aziz Ilaria, Gladisch Johannes, Musumeci Chiara, Moser Maximilian, Griggs Sophie, Kousseff Christina J, Berggren Magnus, McCulloch Iain, Stavrinidou Eleni

机构信息

Laboratory of Organic Electronics, Department of Science and Technology, Linköping University, Norrköping 601 74, Sweden.

POLYMAT, University of the Basque Country UPV/EHU, Avenida Tolosa 72, Donostia-San Sebastian, Gipuzkoa 20018, Spain.

出版信息

Mater Horiz. 2024 Apr 22;11(8):2021-2031. doi: 10.1039/d3mh01827j.

Abstract

Electrochemical doping of organic mixed ionic-electronic conductors is key for modulating their conductivity, charge storage and volume enabling high performing bioelectronic devices such as recording and stimulating electrodes, transistors-based sensors and actuators. However, electrochemical doping has not been explored to the same extent for modulating the mechanical properties of OMIECs on demand. Here, we report a qualitative and quantitative study on how the mechanical properties of a glycolated polythiophene, p(g3T2), change during electrochemical doping and de-doping. The Young's modulus of p(g3T2) changes from 69 MPa in the dry state to less than 10 MPa in the hydrated state and then further decreases down to 0.4 MPa when electrochemically doped. With electrochemical doping-dedoping the Young's modulus of p(g3T2) changes by more than one order of magnitude reversibly, representing the largest modulation reported for an OMIEC. Furthermore, we show that the electrolyte concentration affects the magnitude of the change, demonstrating that in less concentrated electrolytes more water is driven into the film due to osmosis and therefore the film becomes softer. Finally, we find that the oligo ethylene glycol side chain functionality, specifically the length and asymmetry, affects the extent of modulation. Our findings show that glycolated polythiophenes are promising materials for mechanical actuators with a tunable modulus similar to the range of biological tissues, thus opening a pathway for new mechanostimulation devices.

摘要

有机混合离子 - 电子导体的电化学掺杂是调节其导电性、电荷存储和体积的关键,这使得诸如记录和刺激电极、基于晶体管的传感器和致动器等高性能生物电子器件成为可能。然而,电化学掺杂在按需调节有机混合离子 - 电子导体(OMIECs)的机械性能方面尚未得到同等程度的探索。在此,我们报告了一项关于糖基化聚噻吩p(g3T2)在电化学掺杂和去掺杂过程中机械性能如何变化的定性和定量研究。p(g3T2)的杨氏模量从干燥状态下的69 MPa变化到水合状态下的小于10 MPa,然后在电化学掺杂时进一步降至0.4 MPa。随着电化学掺杂 - 去掺杂,p(g3T2)的杨氏模量可逆地变化超过一个数量级,这代表了OMIECs报道的最大调节幅度。此外,我们表明电解质浓度会影响变化的幅度,这表明在浓度较低的电解质中,由于渗透作用更多的水被驱入薄膜,因此薄膜变得更软。最后,我们发现低聚乙二醇侧链官能团,特别是其长度和不对称性,会影响调节程度。我们的研究结果表明,糖基化聚噻吩是具有与生物组织范围相似的可调模量的机械致动器的有前途的材料,从而为新型机械刺激装置开辟了一条途径。

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