Terasawa Naohiro
Inorganic Functional Material Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), 1-8-31 Midorigaoka, Ikeda, Osaka 563-8577, Japan.
Langmuir. 2020 Jun 9;36(22):6154-6159. doi: 10.1021/acs.langmuir.0c00559. Epub 2020 May 27.
The sustainable application of cellulose nanofibers and ionic liquids (ILs) in the fabrication of transparent gel electrolyte actuators combined with thin electrodes remains to be explored. Accordingly, this study developed a new actuator on the basis of a 2,2,6,6-tetramethylpiperidine-1-oxyl radical-oxidized cellulose nanofibers/IL/poly(dimethylsiloxane) (TOCN/IL/PDMS) transparent gel electrolyte. A casting method was employed to prepare the gel electrolyte film, and spray-coating was used to apply thin electrodes. On the basis of its electromechanical and electrochemical properties, the TOCN/IL/PDMS gel electrolyte actuator had high strain performance. The actuator's operational mechanism is based on both electrostatic double-layer capacitor (EDLC) and Faradaic capacitor mechanisms, with the EDLC mechanism having a stronger influence. The actuator's displacement-response frequency dependency was determined, and we simulated the obtained findings by using a double-layer charging kinetic model. The combined gel electrolyte and electrode resistance resulted in a favorable fit to the experimental data, as did the gel electrolyte resistance alone. The performance of the TOCN/IL/PDMS-electrolyte-based polymer actuators can be improved further by designing electrolytes (primarily) and electrodes to have high ionic and electrical conductivities. The films-which are flexible, robust, and transparent-may have potential as actuator materials within electronic and energy-conversion devices that are required to be wearable and transparent.
纤维素纳米纤维和离子液体(ILs)在与薄电极结合制备透明凝胶电解质致动器方面的可持续应用仍有待探索。因此,本研究基于2,2,6,6-四甲基哌啶-1-氧基自由基氧化纤维素纳米纤维/离子液体/聚二甲基硅氧烷(TOCN/IL/PDMS)透明凝胶电解质开发了一种新型致动器。采用流延法制备凝胶电解质膜,并使用喷涂法施加薄电极。基于其机电和电化学性能,TOCN/IL/PDMS凝胶电解质致动器具有高应变性能。该致动器的运行机制基于静电双层电容器(EDLC)和法拉第电容机制,其中EDLC机制的影响更强。确定了致动器的位移响应频率依赖性,并使用双层充电动力学模型对所得结果进行了模拟。凝胶电解质和电极的组合电阻与单独的凝胶电解质电阻一样,都与实验数据具有良好的拟合度。通过设计具有高离子和电导率的电解质(主要是)和电极,可以进一步提高基于TOCN/IL/PDMS电解质的聚合物致动器的性能。这些薄膜具有柔韧性、坚固性和透明性,在需要可穿戴和透明的电子和能量转换设备中作为致动器材料可能具有潜力。