Liu Chengyang, Yoshio Masafumi
Research Center for Macromolecules & Biomaterials, National Institute for Materials Science, 1-2-1 Sengen, Tsukuba, Ibaraki 305-0047, Japan.
Graduate School of Chemical Sciences and Engineering, Hokkaido University, Kita 13, Nishi 8, Kita-ku, Sapporo, Hokkaido 060-8628, Japan.
ACS Appl Mater Interfaces. 2024 May 29;16(21):27750-27760. doi: 10.1021/acsami.4c03821. Epub 2024 May 18.
We present the development of free-standing ionic liquid crystal-polymer composite electrolyte films aimed at achieving high-frequency response electromechanical actuators. Our approach entails designing novel layered ionic liquid-crystalline (LC) assemblies by complexing a mesomorphic dimethylphosphate with either a lithium salt or a room-temperature ionic liquid through the formation of ion-dipole interactions or hydrogen bonds. These electrolytes, exhibiting room-temperature ionic conductivities on the order of 10 S cm and wide LC temperature ranges up to 77 °C, were successfully integrated into porous polymer networks. We systematically investigated the impact of ions and electrodes on the performance of ionic electroactive actuators. Specifically, the Li-based liquid crystal-polymer composite actuator with PEDOT:PSS electrodes demonstrated the highest bending deformation, achieving a strain of 0.68% and exhibiting a broad frequency response up to 110 Hz, with a peak-to-peak displacement of 3 μm. In contrast, the ionic-liquid-based liquid crystal-polymer composite actuator with active carbon electrodes showcased a bending response at a maximum frequency of 50 Hz and a force generation of 0.48 mN, without exhibiting the back relaxation phenomenon. These findings offer valuable insights for advancing high-performance electromechanical systems with applications ranging from soft robotics to haptic interfaces.
我们展示了旨在实现高频响应机电致动器的独立离子液晶-聚合物复合电解质膜的开发。我们的方法包括通过离子-偶极相互作用或氢键的形成,将介晶磷酸二甲酯与锂盐或室温离子液体络合,设计新型层状离子液晶(LC)组件。这些电解质在室温下的离子电导率约为10 S/cm,宽液晶温度范围高达77°C,并成功集成到多孔聚合物网络中。我们系统地研究了离子和电极对离子电活性致动器性能的影响。具体而言,具有PEDOT:PSS电极的锂基液晶-聚合物复合致动器表现出最高的弯曲变形,应变达到0.68%,并在高达110 Hz的频率范围内表现出宽频响应,峰-峰位移为3μm。相比之下,具有活性炭电极的离子液体基液晶-聚合物复合致动器在最高50 Hz的频率下表现出弯曲响应,力产生为0.48 mN,且未表现出反向松弛现象。这些发现为推进从软机器人到触觉界面等应用的高性能机电系统提供了有价值的见解。