Tao Haoxiang, Hu Guangyao, Lu Shun, Li Bing, Zhang Yongxing, Ru Jie
Mechanical and Electrical Engineering, College of Energy and Power Engineering, Lanzhou University of Technology, Lanzhou 730050, China.
Key Laboratory of Green and Precise Synthetic Chemistry and Applications, Ministry of Education, School of Chemistry and Materials Science, Huaibei Normal University, Huaibei 235000, China.
Materials (Basel). 2024 May 20;17(10):2469. doi: 10.3390/ma17102469.
Ionic electroactive polymer (iEAP) actuators are recognized as exceptional candidates for artificial muscle development, with significant potential applications in bionic robotics, space exploration, and biomedical fields. Here, we developed a new iEAP actuator utilizing high-purity single-walled carbon nanotubes (SWCNTs)-reinforced poly(3, 4-ethylenedioxythiophene)/poly(4-styrenesulfonate) (PEDOT: PSS, PP) hybrid electrodes and a Nafion/EMIBF ion-exchange membrane via a straightforward and efficient spray printing technique. The SWCNT/PP actuator exhibits significantly enhanced electric conductivity (262.9 S/cm) and specific capacitance (22.5 mF/cm), benefitting from the synergistic effect between SWCNTs and PP. These improvements far surpass those observed in activated carbon aerogel bucky-gel-electrode-based actuators. Furthermore, we evaluated the electroactive behaviors of the SWCNT/PP actuator under alternating square-wave voltages (1-3 V) and frequencies (0.01-100 Hz). The results reveal a substantial bending displacement of 6.44 mm and a high bending strain of 0.61% (at 3 V, 0.1 Hz), along with a long operating stability of up to 10,000 cycles (at 2 V, 1 Hz). This study introduces a straightforward and efficient spray printing technique for the successful preparation of iEAP actuators with superior electrochemical and electromechanical properties as intended, which hold promise as artificial muscles in the field of bionic robotics.
离子电活性聚合物(iEAP)致动器被认为是人工肌肉开发的优秀候选者,在仿生机器人、太空探索和生物医学领域具有重大潜在应用。在此,我们通过一种简单高效的喷雾印刷技术,开发了一种新型iEAP致动器,该致动器采用了高纯度单壁碳纳米管(SWCNT)增强的聚(3,4-乙撑二氧噻吩)/聚(4-苯乙烯磺酸盐)(PEDOT:PSS,PP)混合电极和Nafion/EMIBF离子交换膜。得益于SWCNT与PP之间的协同效应,SWCNT/PP致动器展现出显著增强的电导率(262.9 S/cm)和比电容(22.5 mF/cm)。这些改进远远超过了基于活性炭气凝胶巴基凝胶电极的致动器所观察到的性能。此外,我们评估了SWCNT/PP致动器在方波交流电压(1 - 3 V)和频率(0.01 - 100 Hz)下的电活性行为。结果显示,在3 V、0.1 Hz时,有6.44 mm的大幅弯曲位移和0.61%的高弯曲应变,以及在2 V、1 Hz时长达10000次循环的长时间运行稳定性。本研究引入了一种简单高效的喷雾印刷技术,成功制备出了具有预期优异电化学和机电性能的iEAP致动器,有望在仿生机器人领域作为人工肌肉应用。