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Soft silicone elastomers with no chemical cross-linking and unprecedented softness and stability

机译:柔软的有机硅弹性体,无化学交联,空前的柔软性和稳定性

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For silicone elastomers used as actuators, softness is key for enabling actuation at low voltages. Recently, an extremely soft (Young's modulus < 50 kPa) silicone elastomer without cross-links has been reported by Goff et al. Besides its extreme softness, the elastomer was reported to almost completely recover (82%) from a 10-cycle elongation of more than 5000%. This observation challenges conventional elasticity theory of cross-linked elastomers because a network without covalent crosslinks should not be able to strain-recover to such extent. In this work, the elastomer is hypothesized to be formed from concatenated rings through heterodifunctional uni-molecular ring closure. It is found that the elastic properties of this uncross-linked elastomer can be described by the dynamics of concatenated rings, which act as pseudo-crosslinks and pseudo-entanglements. Isolated rings and dangling rings function as external solvents and internal solvents respectively, thereby contributing to the unprecedented softness. The ability to precisely control the ratio between concatenated and dangling rings is expected to lead to even softer dielectric elastomers paving the way forward for ultra-soft robotics without significant mechanical losses.
机译:对于用作致动器的有机硅弹性体,柔软性是实现低压驱动的关键。最近,Goff等人报道了一种极软(杨氏模量<50 kPa)的有机硅弹性体,没有交联。据报道,该弹性体除了具有极高的柔软性外,还可以从超过5000%的10个循环的伸长率中几乎完全恢复(82%)。该观察结果对交联弹性体的常规弹性理论提出了挑战,因为没有共价交联键的网络不应能够应变恢复到这种程度。在这项工作中,假设弹性体是通过杂双官能单分子环闭合由连接环形成的。已经发现,这种未交联的弹性体的弹性性质可以通过级联环的动力学来描述,该级联的环充当伪交联和伪缠结。隔离环和悬空环分别用作外部溶剂和内部溶剂,从而有助于实现前所未有的柔软性。精确控制级联环和悬挂环之间的比率的能力有望导致更柔软的介电弹性体,从而为超软机器人技术铺平道路,而不会造成重大机械损耗。

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