Ellingford Christopher, Zhang Runan, Wemyss Alan M, Bowen Christopher, McNally Tony, Figiel Łukasz, Wan Chaoying
Department of Mechanical Engineering , University of Bath , Bath BA2 2ET , U.K.
ACS Appl Mater Interfaces. 2018 Nov 7;10(44):38438-38448. doi: 10.1021/acsami.8b13785. Epub 2018 Oct 25.
The electromechanical properties of a thermoplastic styrene-butadiene-styrene (SBS) dielectric elastomer was intrinsically tuned by chemical grafting with polar organic groups. Methyl thioglycolate (MG) reacted with the butadiene block via a one-step thiol-ene "click" reaction under UV at 25 °C. The MG grafting ratio reached 98.5 mol % (with respect to the butadiene alkenes present) within 20 min and increased the relative permittivity to 11.4 at 10 Hz, with a low tan δ. The actuation strain of the MG-grafted SBS dielectric elastomer actuator was 10 times larger than the SBS-based actuator, and the actuation force was 4 times greater than SBS. The MG-grafted SBS demonstrated an ability to achieve both mechanical and electrical self-healing. The electrical breakdown strength recovered to 15% of its original value, and the strength and elongation at break recovered by 25 and 21%, respectively, after 3 days. The self-healing behavior was explained by the introduction of polar MG groups that reduce viscous loss and strain relaxation. The weak CH/π bonds through the partially charged (δ+) groups adjacent to the ester of MG and the δ- center of styrene enable polymer chains to reunite and recover properties. Intrinsic tuning can therefore enhance the electromechanical properties of dielectric elastomers and provides new actuator materials with self-healing mechanical and dielectric properties.
通过与极性有机基团进行化学接枝,对热塑性苯乙烯-丁二烯-苯乙烯(SBS)介电弹性体的机电性能进行了本征调控。在25℃的紫外光下,硫代乙醇酸甲酯(MG)通过一步硫醇-烯“点击”反应与丁二烯嵌段发生反应。在20分钟内,MG接枝率达到98.5摩尔%(相对于存在的丁二烯烯烃),并在10Hz时将相对介电常数提高到11.4,损耗角正切较低。MG接枝的SBS介电弹性体致动器的驱动应变比基于SBS的致动器大10倍,驱动力比SBS大4倍。MG接枝的SBS表现出实现机械和电气自修复的能力。3天后,电击穿强度恢复到其原始值的15%,断裂强度和断裂伸长率分别恢复了25%和21%。通过引入减少粘性损失和应变松弛的极性MG基团来解释自修复行为。通过与MG酯相邻的部分带电(δ+)基团和苯乙烯的δ-中心形成的弱CH/π键,使聚合物链重新结合并恢复性能。因此,本征调控可以增强介电弹性体的机电性能,并提供具有自修复机械和介电性能的新型致动器材料。