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具有压电化学发光皮肤的粘弹多孔弹性体。

Visco-Poroelastic Electrochemiluminescence Skin with Piezo-Ionic Effect.

机构信息

Department of Chemical and Biomolecular Engineering, Sogang University, Seoul, 04107, Republic of Korea.

Department of Chemical Engineering, Hanyang University, Seoul, 04763, Republic of Korea.

出版信息

Adv Mater. 2021 Jul;33(29):e2100321. doi: 10.1002/adma.202100321. Epub 2021 Jun 1.

Abstract

Following early research efforts devoted to achieving excellent sensitivity of electronic skins, recent design schemes for these devices have focused on strategies for transduction of spatially resolved sensing data into straightforward user-adaptive visual signals. Here, a material platform capable of transducing mechanical stimuli into visual readout is presented. The material layer comprises a mixture of an ionic transition metal complex luminophore and an ionic liquid (capable of producing electrochemiluminescence (ECL)) within a thermoplastic polyurethane matrix. The proposed material platform shows visco-poroelastic response to mechanical stress, which induces a change in the distribution of the ionic luminophore in the film, which is referred to as the piezo-ionic effect. This piezo-ionic effect is exploited to develop a simple device containing the composite layer sandwiched between two electrodes, which is termed "ECL skin". Emission from the ECL skin is examined, which increases with the applied normal/tensile stress. Additionally, locally applied stress to the ECL skin is spatially resolved and visualized without the use of spatially distributed arrays of pressure sensors. The simple fabrication and unique operation of the demonstrated ECL skin are expected to provide new insights into the design of materials for human-machine interactive electronic skins.

摘要

在早期致力于实现电子皮肤高灵敏度的研究工作之后,最近这些设备的设计方案侧重于将空间分辨传感数据转换为直观的用户自适应视觉信号的策略。在这里,提出了一种能够将机械刺激转换为视觉读出的材料平台。该材料层由离子过渡金属配合物发光体和离子液体(能够产生电致化学发光(ECL))的混合物组成,位于热塑性聚氨酯基质中。所提出的材料平台对机械应力表现出粘弹性响应,这会导致薄膜中离子发光体的分布发生变化,这被称为压致离子效应。利用这种压致离子效应,开发了一种简单的器件,其中包含夹在两个电极之间的复合层,称为“ECL 皮肤”。检查 ECL 皮肤的发射,发现其随施加的法向/拉伸应力而增加。此外,无需使用压力传感器的空间分布阵列,即可对 ECL 皮肤的局部施加的应力进行空间分辨和可视化。所展示的 ECL 皮肤的简单制造和独特操作有望为用于人机交互电子皮肤的材料设计提供新的见解。

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