Tough nanocomposite ionogel-based actuator exhibits robust performance.

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2014-10

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Abstract

Ionogel electrolytes can be fabricated for electrochemical actuators with many desirable advantages, including direct low-voltage control in air, high electrochemical and thermal stability, and complete silence during actuation. However, the demands for active actuators with above features and load-driving ability remain a challenge; much work is necessary to enhance the mechanical strength of electrolyte materials. Herein, we describe a cross-linked supramolecular approach to prepare tough nanocomposite gel electrolytes from HEMA, BMIMBF4, and TiO2 via self-initiated UV polymerization. The tough and stable ionogels are emerging to fabricate electric double-layer capacitor-like soft actuators, which can be driven by electrically induced ion migration. The ionogel-based actuator shows a displacement response of 5.6 mm to the driving voltage of 3.5 V. After adding the additional mass weight of the same as the actuator, it still shows a large displacement response of 3.9 mm. Furthermore, the actuator can not only work in harsh temperature environments (100°C and -10°C) but also realize the goal of grabbing an object by adjusting the applied voltage.

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10.1038/srep06673

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Liu, Xinhua, Bin He, Zhipeng Wang, Haifeng Tang, Teng Su and Qigang Wang (2014). Tough nanocomposite ionogel-based actuator exhibits robust performance. Scientific reports, 4(1). p. 6673. 10.1038/srep06673 Retrieved from https://hdl.handle.net/10161/26309.

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Teng Su

Assistant Professor in Medicine

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