Linear contracting and air-stable electrochemical artificial muscles based on commercially available CNT yarns and ionically selective ionogel coatings AITranslate
Abstract AITranslate
Highlights • Air-stable linear actuator based on commercially available carbon nanotube (CNT) yarns. • Ionogels developped on purpose for unipolar actuation behaviour. • Outstanding contractile stroke reaching 9.7% upon low-voltage electrochemical stimulation. Artificial muscles, or soft actuators, that could exhibit contractile stroke and operate in open-air, would be crucial for many applications, such as robotics, prosthetics, or powered exoskeletons. Amongst the different artificial muscle technologies, electrochemical carbon nanotube (CNT) yarn muscles, transducing capacitively ionic accumulation at the electrochemical double layer into linear contraction, are amongst the most promising candidates. However, their performances are either limited by an undesired bipolar behaviour or short lifetime due to the inevitable drying of water-based electrolytes. In this paper, we present here the fabrication of air-operating contractile linear artificial muscles from commercially available CNT yarns exhibiting outstanding performance. The synthesis and the junction of two ionogels based on cationic and anionic polyelectrolyte have been designed for the coating process on CNT yarns, and for selectively orienting the ionic flow allowing optimal electromechanical energy conversion. The dual-electrode CNT yarn actuators showed air-stable unipolar contractile stroke, reaching 9.7% without loss of performances after 2000 cycles. Graphical abstract Download : Download high-res image (186KB) Download : Download full-size image
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DOI:https://doi.org/10.1016/j.apmt.2023.101756
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Highlights • Air-stable linear actuator based on commercially available carbon nanotube (CNT) yarns. • Ionogels developped on purpose for unipolar actuation behaviour. • Outstanding contractile stroke reaching 9.7% upon low-voltage electrochemical stimulation. Artificial muscles, or soft actuators, that could exhibit contractile stroke and operate in open-air, would be crucial for many applications, such as robotics, prosthetics, or powered exoskeletons. Amongst the different artificial muscle technologies, electrochemical carbon nanotube (CNT) yarn muscles, transducing capacitively ionic accumulation at the electrochemical double layer into linear contraction, are amongst the most promising candidates. However, their performances are either limited by an undesired bipolar behaviour or short lifetime due to the inevitable drying of water-based electrolytes. In this paper, we present here the fabrication of air-operating contractile linear artificial muscles from commercially available CNT yarns exhibiting outstanding performance. The synthesis and the junction of two ionogels based on cationic and anionic polyelectrolyte have been designed for the coating process on CNT yarns, and for selectively orienting the ionic flow allowing optimal electromechanical energy conversion. The dual-electrode CNT yarn actuators showed air-stable unipolar contractile stroke, reaching 9.7% without loss of performances after 2000 cycles. Graphical abstract Download : Download high-res image (186KB) Download : Download full-size image
quote
| GB/T 7714-2015 | [1] Bin Ni, Frédéric Braz Ribeiro, Cédric Vancaeyzeele, et al. Applied Materials Today, 2023(31). DOI:10.1016/j.apmt.2023.101756. |
| MLA | [1] Bin Ni, et al., Applied Materials Today, no. 31, 2023, https://doi.org/10.1016/j.apmt.2023.101756. |
| APA | [1] Bin Ni, Frédéric Braz Ribeiro, Cédric Vancaeyzeele, Giao T.M. Nguyen, Edwin W.H. Jager, Frédéric Vidal, & Cédric Plesse. (2023). Applied Materials Today(31). https://doi.org/10.1016/j.apmt.2023.101756 |
| IEEE | [1] Bin Ni, Frédéric Braz Ribeiro, Cédric Vancaeyzeele, Giao T.M. Nguyen, Edwin W.H. Jager, Frédéric Vidal, and Cédric Plesse, Applied Materials Today, no. 31, 2023, doi: 10.1016/j.apmt.2023.101756. keywords: {Artificial muscle;Poly (ionic liquid);Coiled CNT;Ionoelastomer;Linear contractile stroke} |
