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All-silicone prestrain-locked interpenetrating polymer network elastomers: Free-standing silicone artificial muscles with improved performance and robustness

机译:全有机硅预应变锁定互穿聚合物网络弹性体:独立式有机硅人造肌肉,具有改善的性能和坚固性

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摘要

We present a novel all-silicone prestrain-locked interpenetrating polymer network (all-S-IPN) elastomer for use as a muscle-like actuator. The elastomer is fabricated using a combination of two silicones: a soft room temperature vulcanizing (RTV) silicone that serves as the host elastomer matrix, and a more rigid high temperature vulcanizing (HTV) silicone that acts to preserve the prestrain in the host network. In our novel S-IPN fabrication procedure we co-dissolve the RTV and HTV silicones in a common solvent, cast thin films, and allow the RTV silicone to cure before applying prestrain and finally curing the HTV silicone to lock in the prestrain. The free-standing prestrain-locked silicones show a performance improvement over standard free-standing silicone films, with a linear strain of 25% and an area strain of 45% when tested in a diaphragm configuration. We show that the process can also be used to improve electrode adhesion and stability as well as improve the interlayer adhesion in multilayer actuators. We demonstrate that, when coupled with carbon nanotube electrodes, fault-tolerance through self-clearing can be observed. We use the fault-tolerance and improved interlayer adhesion to demonstrate stable long-life (>30 000 cycles at >20% strain) actuation and repeated high-performance actuation (>500 cycles at ~40% strain) of prestrained free-standing multilayer actuators driving a load.
机译:我们提出了一种新型的全有机硅预应力互穿聚合物网络(全S-IPN)弹性体,用作类似肌肉的促动器。弹性体是使用两种有机硅的组合制成的:用作主体弹性体基质的柔软的室温硫化(RTV)有机硅,以及用于保留主体网络中的预应变的刚性更高的高温硫化(HTV)有机硅。在我们新颖的S-IPN制造过程中,我们将RTV和HTV硅酮共溶解在一种普通溶剂中,铸成薄膜,并允许RTV硅酮在施加预应变之前固化,最后固化HTV硅酮以锁定在预应变中。独立的预应变锁定有机硅显示出优于标准独立式有机硅薄膜的性能,在膜片配置中进行测试时,线性应变为25%,面积应变为45%。我们表明,该方法还可以用于改善电极粘附性和稳定性,以及改善多层促动器中的层间粘附性。我们证明,当与碳纳米管电极耦合时,可以通过自清除来观察容错。我们使用容错性和改进的层间附着力来证明预应力独立式多层板具有稳定的长寿命(在> 20%应变时> 30,000次循环)和重复的高性能(在> 40%应变时> 500次循环)驱动执行器驱动负载。

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