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包含氧化镍和气相生长碳纳米纤维的高性能混合(基于静电双层和法拉第电容)聚合物致动器。

High-performance hybrid (electrostatic double-layer and faradaic capacitor-based) polymer actuators incorporating nickel oxide and vapor-grown carbon nanofibers.

作者信息

Terasawa Naohiro, Asaka Kinji

机构信息

Health Research Institute, National Institute of Advanced Industrial Science and Technology (AIST) , 1-8-31 Midorigaoka, Ikeda, Osaka 563-8577, Japan.

出版信息

Langmuir. 2014 Dec 2;30(47):14343-51. doi: 10.1021/la503468z. Epub 2014 Nov 17.

Abstract

The electrochemical and electromechanical properties of polymeric actuators prepared using nickel peroxide hydrate (NiO2·xH2O) or nickel peroxide anhydride (NiO2)/vapor-grown carbon nanofibers (VGCF)/ionic liquid (IL) electrodes were compared with actuators prepared using solely VGCFs or single-walled carbon nanotubes (SWCNTs) and an IL. The electrode in these actuator systems is equivalent to an electrochemical capacitor (EC) exhibiting both electrostatic double-layer capacitor (EDLC)- and faradaic capacitor (FC)-like behaviors. The capacitance of the metal oxide (NiO2·xH2O or NiO2)/VGCF/IL electrode is primarily attributable to the EDLC mechanism such that, at low frequencies, the strains exhibited by the NiO2·xH2O/VGCF/IL and NiO2/VGCF/IL actuators primarily result from the FC mechanism. The VGCFs in the NiO2·xH2O/VGCF/IL and NiO2/VGCF/IL actuators strengthen the EDLC mechanism and increase the electroconductivity of the devices. The mechanism underlying the functioning of the NiO2·xH2O/VGCF/IL actuator in which NiO2·xH2O/VGCF = 1.0 was found to be different from that of the devices produced using solely VGCFs or SWCNTs, which exhibited only the EDLC mechanism. In addition, it was found that both NiO2 and VGCFs are essential with regard to producing actuators that are capable of exhibiting strain levels greater than those of SWCNT-based polymer actuators and are thus suitable for practical applications. Furthermore, the frequency dependence of the displacement responses of the NiO2·xH2O/VGCF and NiO2/VGCF polymer actuators were successfully simulated using a double-layer charging kinetic model. This model, which accounted for the oxidization and reduction reactions of the metal oxide, can also be applied to SWCNT-based actuators. The results of electromechanical response simulations for the NiO2·xH2O/VGCF and NiO2/VGCF actuators predicted the strains at low frequencies as well as the time constants of the devices, confirming that the model is applicable not only to EDLC-based actuator systems but also to the fabricated EDLC/FC system.

摘要

将使用水合过氧化镍(NiO₂·xH₂O)或无水过氧化镍(NiO₂)/气相生长碳纳米纤维(VGCF)/离子液体(IL)电极制备的聚合物致动器的电化学和机电性能,与仅使用VGCFs或单壁碳纳米管(SWCNTs)和离子液体制备的致动器进行了比较。这些致动器系统中的电极相当于一个电化学电容器(EC),表现出类似静电双层电容器(EDLC)和法拉第电容器(FC)的行为。金属氧化物(NiO₂·xH₂O或NiO₂)/VGCF/IL电极的电容主要归因于EDLC机制,因此在低频时,NiO₂·xH₂O/VGCF/IL和NiO₂/VGCF/IL致动器表现出的应变主要源于FC机制。NiO₂·xH₂O/VGCF/IL和NiO₂/VGCF/IL致动器中的VGCFs强化了EDLC机制并提高了器件的电导率。发现NiO₂·xH₂O/VGCF = 1.0的NiO₂·xH₂O/VGCF/IL致动器的运行机制与仅使用VGCFs或SWCNTs制备的器件不同,后者仅表现出EDLC机制。此外,还发现NiO₂和VGCFs对于生产能够表现出比基于SWCNT的聚合物致动器更大应变水平的致动器至关重要,因此适用于实际应用。此外,使用双层充电动力学模型成功模拟了NiO₂·xH₂O/VGCF和NiO₂/VGCF聚合物致动器位移响应的频率依赖性。该模型考虑了金属氧化物的氧化和还原反应,也可应用于基于SWCNT的致动器。NiO₂·xH₂O/VGCF和NiO₂/VGCF致动器的机电响应模拟结果预测了低频时的应变以及器件的时间常数,证实该模型不仅适用于基于EDLC的致动器系统,也适用于制造的EDLC/FC系统。

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