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用于电磁干扰屏蔽的Ti C -MXene功能化导电聚合物水凝胶的增材制造

Additive Manufacturing of Ti C -MXene-Functionalized Conductive Polymer Hydrogels for Electromagnetic-Interference Shielding.

作者信息

Liu Ji, Mckeon Lorcan, Garcia James, Pinilla Sergio, Barwich Sebastian, Möbius Matthias, Stamenov Plamen, Coleman Jonathan N, Nicolosi Valeria

机构信息

Centre for Research on Adaptive Nanostructures and Nanodevices (CRANN) and Advanced Materials Bio-Engineering Research Centre (AMBER), Trinity College Dublin, Dublin 2, Dublin, D02 PN40, Ireland.

School of Chemistry, Trinity College Dublin, Dublin 2, Dublin, D02 PN40, Ireland.

出版信息

Adv Mater. 2022 Feb;34(5):e2106253. doi: 10.1002/adma.202106253. Epub 2021 Dec 16.

Abstract

The ongoing miniaturization of devices and development of wireless and implantable technologies demand electromagnetic interference (EMI)-shielding materials with customizability. Additive manufacturing of conductive polymer hydrogels with favorable conductivity and biocompatibility can offer new opportunities for EMI-shielding applications. However, simultaneously achieving high conductivity, design freedom, and shape fidelity in 3D printing of conductive polymer hydrogels is still very challenging. Here, an aqueous Ti C -MXene-functionalized poly(3,4-ethylenedioxythiophene):polystyrene sulfonate ink is developed for extrusion printing to create 3D objects with arbitrary geometries, and a freeze-thawing protocol is proposed to transform the printed objects directly into highly conductive and robust hydrogels with high shape fidelity on both the macro- and microscale. The as-obtained hydrogel exhibits a high conductivity of 1525.8 S m at water content up to 96.6 wt% and also satisfactory mechanical properties with flexibility, stretchability, and fatigue resistance. Furthermore, the use of the printed hydrogel for customizable EMI-shielding applications is demonstrated. The proposed easy-to-manufacture approach, along with the highlighted superior properties, expands the potential of conductive polymer hydrogels in future customizable applications and represents a real breakthrough from the current state of the art.

摘要

设备的持续小型化以及无线和可植入技术的发展,需要具有可定制性的电磁干扰(EMI)屏蔽材料。具有良好导电性和生物相容性的导电聚合物水凝胶的增材制造可为EMI屏蔽应用提供新机遇。然而,在导电聚合物水凝胶的3D打印中同时实现高导电性、设计自由度和形状保真度仍然极具挑战性。在此,开发了一种水性Ti C -MXene功能化的聚(3,4-乙撑二氧噻吩):聚苯乙烯磺酸盐油墨用于挤出打印,以创建具有任意几何形状的3D物体,并提出了一种冻融方案,可将打印物体直接转化为在宏观和微观尺度上均具有高形状保真度的高导电性且坚固的水凝胶。所获得的水凝胶在水含量高达96.6 wt%时表现出1525.8 S m的高导电性,并且还具有令人满意的机械性能,具备柔韧性、拉伸性和抗疲劳性。此外,还展示了将打印水凝胶用于可定制EMI屏蔽应用。所提出的易于制造的方法以及突出的优异性能,扩展了导电聚合物水凝胶在未来可定制应用中的潜力,代表了从当前技术水平取得的真正突破。

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