Silicones for Stretchable and Durable Soft Devices: Beyond Sylgard-184

硅酮 材料科学 肖氏硬度计 弹性聚硅酮类 软机器人 抗撕裂性 弹性体 复合材料 可伸缩电子设备 延伸率 极限抗拉强度 纳米技术 计算机科学 数码产品 物理化学 人工智能 执行机构 化学
作者
Sungjune Park,Kunal Mondal,Robert M. Treadway,Vikash Kumar,Siyuan Ma,James D. Holbery,Michael David Dickey
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:10 (13): 11261-11268 被引量:228
标识
DOI:10.1021/acsami.7b18394
摘要

This paper identifies and characterizes silicone elastomers that are well-suited for fabricating highly stretchable and tear-resistant devices that require interfacial bonding by plasma or UV ozone treatment. The ability to bond two or more pieces of molded silicone is important for creating microfluidic channels, chambers for pneumatically driven soft robotics, and other soft and stretchable devices. Sylgard-184 is a popular silicone, particularly for microfluidic applications. However, its low elongation at break (∼100% strain) and moderate tear strength (∼3 N/mm) make it unsuitable for emerging, mechanically demanding applications of silicone. In contrast, commercial silicones, such as Dragon Skin, have excellent mechanical properties yet are difficult to plasma-bond, likely because of the presence of silicone oils that soften the network yet migrate to the surface and interfere with plasma bonding. We found that extracting silicone oligomers from these soft networks allows these materials to bond but only when the Shore hardness exceeds a value of 15 A. It is also possible to mix highly stretchable silicones (Dragon Skin and Ecoflex) with Sylgard-184 to create silicones with intermediate mechanical properties; interestingly, these blends also only bond when the hardness exceeds 15 A. Eight different Pt-cured silicones were also screened; again, only those with Shore hardness above 15 A plasma-bond. The most promising silicones from this study are Sylgard-186 and Elastosil-M4130 and M4630, which exhibit a large deformation (>200% elongation at break), high tear strength (>12 N/mm), and strong plasma bonding. To illustrate the utility of these silicones, we created stretchable electrodes by injecting a liquid metal into microchannels created using such silicones, which may find use in soft robotics, electronic skin, and stretchable energy storage devices.
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