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首页> 外文期刊>ACS nano >Reversible Electrochemical Actuation of Metallic Nanohoneycombs Induced by Pseudocapacitive Redox Processes
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Reversible Electrochemical Actuation of Metallic Nanohoneycombs Induced by Pseudocapacitive Redox Processes

机译:伪电容氧化还原过程诱导的金属纳米蜂窝的可逆电化学驱动

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摘要

Current metallic-based electrochemical actuators are limited to nanoporous gold/platinum with randomly distributed pores, where the charge-induced reversible strain is mainly due to the nonfaradic charging/discharging processes along the capacitive electrochemical double layer. Here, we report an electrochemical actuating property of nanohoneycomb-structured nickel, with the actuation mechanism mainly due to a pseudocapacitive behavior by means of reversible faradic redox reactions. By using a dual-template synthesis method, a bilayered cantilever, comprising a nanohoneycomb layer backed by a solid layer of the same metal, was fabricated. Reversible bending of the cantilever upon cyclic potential triggering was observed. The strain of the cantilever increases nonlinearly with both potential and charge due to redox reactions. The maximum strain that can be achieved under a certain scan rate complies with a linear relationship with the capacity. Benefiting from the stable Ni(II)/Ni(III) redox couples at the electrode surface, the reversible actuation is very stable in hydroxide solutions.
机译:当前的基于金属的电化学致动器限于具有随机分布的孔的纳米多孔金/铂,其中电荷诱导的可逆应变主要归因于沿着电容性电化学双层的非法拉第充电/放电过程。在这里,我们报告了纳米蜂窝状镍的电化学驱动特性,其驱动机理主要归因于可逆法拉第氧化还原反应的拟电容行为。通过使用双模板合成方法,制造了双层悬臂,其包括由相同金属的固体层支持的纳米蜂窝层。观察到循环电位触发时悬臂的可逆弯曲。由于氧化还原反应,悬臂的应变随着电势和电荷非线性增加。在一定的扫描速率下可以达到的最大应变与容量成线性关系。得益于电极表面稳定的Ni(II)/ Ni(III)氧化还原对,可逆驱动在氢氧化物溶液中非常稳定。

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