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Adhesion promoters for large scale fabrication of dielectric elastomer stack transducers (DESTs) made of pre-fabricated dielectric films

机译:粘合促进剂,用于大规模制造由预制介电膜制成的介电弹性体堆叠换能器(DEST)

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Multilayer dielectric elastomer stack transducers (DESTs) are a promising new transducer technology with many applications in different industry sectors, like medical devices, human-machine-interaction, etc. Stacked dielectric elastomer transducers show larger thickness contraction driven by lower voltages than transducers made from a single dielectric layer. Traditionally multilayered DESTs are produced by repeatedly cross-linking a liquid elastomeric pre-polymer into the required shape. Our recent research focusses on a novel fabrication method for large scale stack transducers with a surface area over 200 x 300 mm by processing pre-fabricated elastomeric thin films of less than 50 μm thicknesses. The thin films are provided as two- or three-layer composites, where the elastomer is sandwiched between one or two sacrificial liners. Separating the elastomeric film from the residual layers and assembling them into dielectric elastomer stack transducers poses many challenges concerning adhesion, since the dielectric film merely separates from the liner if the adhesive forces between them are overcome. Conversely, during the assembly of a dielectric elastomer stack transducer, adhesive forces have to be established between two elastomeric layers or between the dielectric and the electrode layer. The very low Young's modulus of at least one adhesion partner requires suitable means of increasing the adhesive forces between the different adhesive layers of a dielectric elastomer stack transducer to prevent a delamination of the transducer during its lifetime. This work evaluates different surface activation treatments - corona, low-pressure plasma and UV-light - and their applicability in the production of large scale DESTs made from pre-fabricated elastomeric films.
机译:多层介电弹性体堆叠换能器(DEST)是一种有前途的新换能器技术,在医疗设备,人机交互等不同行业领域中都有许多应用。与由以下材料制成的换能器相比,堆叠的介电弹性体换能器在较低的电压驱动下显示出更大的厚度收缩单个介电层。传统上,多层DEST是通过将液态弹性体预聚物反复交联成所需形状来生产的。我们最近的研究集中在通过处理厚度小于50μm的预制弹性体薄膜,针对表面积超过200 x 300 mm的大型堆叠换能器的新型制造方法。薄膜以两层或三层复合材料的形式提供,其中弹性体夹在一个或两个牺牲衬里之间。将弹性体膜与残余层分离并将它们组装成介电弹性体堆叠换能器提出了许多关于粘附的挑战,因为如果克服了介电膜之间的粘附力,则介电膜仅与衬里分离。相反,在介电弹性体堆叠换能器的组装期间,必须在两个弹性体层之间或在介电体和电极层之间建立粘合力。至少一种粘附配偶的非常低的杨氏模量需要适当的手段来增加介电弹性体堆叠换能器的不同粘合剂层之间的粘附力,以防止换能器在其寿命期间分层。这项工作评估了不同的表面活化处理-电晕,低压等离子体和紫外线-以及它们在由预制弹性体薄膜制成的大规模DEST生产中的适用性。

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