Melville Laboratory for Polymer Synthesis, Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge, CB2 1EW, UK.
Department of Architecture, University of Cambridge, 1 Scroope Terrace, Cambridge, CB2 1PX, UK.
Adv Mater. 2018 Jul;30(27):e1707169. doi: 10.1002/adma.201707169. Epub 2018 May 18.
Spider silk is a fascinating material, combining high strength and elasticity that outperforms most synthetic fibers. Another intriguing feature of spider silk is its ability to "supercontract," shrinking up to 50% when exposed to water. This is likely on account of the entropy-driven recoiling of secondary structured proteins when water penetrates the spider silk. In contrast, humidity-driven contraction in synthetic fibers is difficult to achieve. Here, inspired by the spider silk model, a supercontractile fiber (SCF), which contracts up to 50% of its original length at high humidity, comparable to spider silk, is reported. The fiber exhibits up to 300% uptake of water by volume, confirmed via environmental scanning electron microscopy. Interestingly, the SCF exhibits tunable mechanical properties by varying humidity, which is reflected by the prolonged failure strain and the reversible damping capacity. This smart supramolecular fiber material provides a new opportunity of fabricating biomimetic muscle for diverse applications.
蜘蛛丝是一种迷人的材料,兼具高强度和弹性,超过大多数合成纤维。蜘蛛丝另一个有趣的特性是它能够“超收缩”,在接触水时可缩小至 50%。这很可能是由于当水渗透蜘蛛丝时,二级结构蛋白的熵驱动回缩。相比之下,在合成纤维中实现湿度驱动收缩较为困难。在这里,受蜘蛛丝模型的启发,报道了一种超收缩纤维(SCF),在高湿度下可收缩至原始长度的 50%,与蜘蛛丝相当。纤维的体积吸水率高达 300%,通过环境扫描电子显微镜得到证实。有趣的是,SCF 通过改变湿度表现出可调节的机械性能,这反映在延长的失效应变和可逆的阻尼能力上。这种智能超分子纤维材料为各种应用提供了制造仿生肌肉的新机会。