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展示电化学渗透驱动的超强离子电子薄膜。

Ultrastrong Ionotronic Films Showing Electrochemical Osmotic Actuation.

作者信息

Li Lengwan, Tian Weiqian, VahidMohammadi Armin, Rostami Jowan, Chen Bin, Matthews Kyle, Ram Farsa, Pettersson Torbjörn, Wågberg Lars, Benselfelt Tobias, Gogotsi Yury, Berglund Lars A, Hamedi Mahiar Max

机构信息

Department of Fibre and Polymer Technology, Wallenberg Wood Science Center, KTH Royal Institute of Technology, Stockholm, SE-100 44, Sweden.

School of Materials Science and Engineering, Ocean University of China, Qingdao, Shandong, 266100, China.

出版信息

Adv Mater. 2023 Nov;35(45):e2301163. doi: 10.1002/adma.202301163. Epub 2023 Aug 13.

Abstract

A multifunctional soft material with high ionic and electrical conductivity, combined with high mechanical properties and the ability to change shape can enable bioinspired responsive devices and systems. The incorporation of all these characteristics in a single material is very challenging, as the improvement of one property tends to reduce other properties. Here, a nanocomposite film based on charged, high-aspect-ratio 1D flexible nanocellulose fibrils, and 2D Ti C T MXene is presented. The self-assembly process results in a stratified structure with the nanoparticles aligned in-plane, providing high ionotronic conductivity and mechanical strength, as well as large water uptake. In hydrogel form with 20 wt% liquid, the electrical conductivity is over 200 S cm and the in-plane tensile strength is close to 100 MPa. This multifunctional performance results from the uniquely layered composite structure at nano- and mesoscales. A new type of electrical soft actuator is assembled where voltage as low as ±1 V resulted in osmotic effects and giant reversible out-of-plane swelling, reaching 85% strain.

摘要

一种具有高离子和电导率、兼具高机械性能以及形状改变能力的多功能软材料,能够实现受生物启发的响应式设备和系统。将所有这些特性整合到单一材料中极具挑战性,因为一种性能的提升往往会降低其他性能。在此,展示了一种基于带电的、高纵横比的一维柔性纳米纤维素原纤维和二维Ti C T MXene的纳米复合薄膜。自组装过程产生了一种分层结构,其中纳米颗粒在平面内排列,提供了高离子电子传导率和机械强度,以及高吸水量。在含有20 wt%液体的水凝胶形式下,电导率超过200 S/cm,平面内拉伸强度接近100 MPa。这种多功能性能源于纳米和介观尺度上独特的层状复合结构。组装了一种新型电软致动器,其中低至±1 V的电压会产生渗透效应和巨大的可逆平面外膨胀,应变达到85%。

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