一锅光诱导形成导电水凝胶

IF 4.7 Q1 POLYMER SCIENCE
Dan My Nguyen, Chun-Yuan Lo, Tianzheng Guo, Taewook Choi, Shalini Sundar, Zachary Swain, Yuhang Wu, Charles Dhong and Laure V. Kayser*, 
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引用次数: 0

摘要

导电水凝胶是开发生物电子设备的创新平台。虽然光刻技术能够以高分辨率制造复杂的结构,但光刻导电水凝胶仍然是一项具有挑战性的任务,因为导电聚合物会吸收光线,这可能会影响绝缘支架的光聚合。在本研究中,我们介绍了一种一步合成导电水凝胶的方法。我们的方法将聚合物支架的光交联与 3,4-乙烯二氧噻吩(EDOT)的聚合同时进行,无需额外的光催化剂。这一过程包括将可光交联的含香豆素单体与苯乙烯磺酸钠共聚,生成水溶性聚(苯乙烯磺酸盐-香豆素丙烯酸酯)(P(SS-co-CoumAc))共聚物。我们的研究结果表明,将[SS]:[CoumAc]的比例优化为 100:5,可使水凝胶的断裂应变高达 16%。这种机械弹性与 9.2 S m-1 的电子电导率相结合,适用于可穿戴电子设备。此外,这种导电水凝胶还可以通过光图案化实现高分辨率的微米级结构。光交联水凝胶可用作电极,记录稳定可靠的表面肌电图(sEMG)信号。这些新型光交联聚合物与一锅 PEDOT(聚 EDOT)聚合相结合,为快速制作复杂的生物电子设备原型和创建电子与生物系统之间的定制界面提供了可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

One Pot Photomediated Formation of Electrically Conductive Hydrogels

One Pot Photomediated Formation of Electrically Conductive Hydrogels

One Pot Photomediated Formation of Electrically Conductive Hydrogels

Electrically conductive hydrogels represent an innovative platform for the development of bioelectronic devices. While photolithography technologies have enabled the fabrication of complex architectures with high resolution, photoprinting conductive hydrogels is still a challenging task because the conductive polymer absorbs light which can outcompete photopolymerization of the insulating scaffold. In this study, we introduce an approach to synthesizing conductive hydrogels in one step. Our approach combines the simultaneous photo-cross-linking of a polymeric scaffold and the polymerization of 3,4-ethylene dioxythiophene (EDOT), without additional photocatalysts. This process involves the copolymerization of photo-cross-linkable coumarin-containing monomers with sodium styrenesulfonate to produce a water-soluble poly(styrenesulfonate-co-coumarin acrylate) (P(SS-co-CoumAc)) copolymer. Our findings reveal that optimizing the [SS]:[CoumAc] ratio at 100:5 results in hydrogels with the strain at break up to 16%. This mechanical resilience is coupled with an electronic conductivity of 9.2 S m–1 suitable for wearable electronics. Furthermore, the conductive hydrogels can be photopatterned to achieve micrometer-sized structures with high resolution. The photo-cross-linked hydrogels are used as electrodes to record stable and reliable surface electromyography (sEMG) signals. These novel photo-cross-linkable polymers combined with one-pot PEDOT (poly-EDOT) polymerization open possibilities for rapidly prototyping complex bioelectronic devices and creating custom-designed interfaces between electronics and biological systems.

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CiteScore
2.50
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