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首页> 外文期刊>Electrochimica Acta >Electrochemical study of the diffusion of cytochrome c within nanoscale pores derived from cylinder-forming polystyrene-poly(methylmethacrylate) diblock copolymers
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Electrochemical study of the diffusion of cytochrome c within nanoscale pores derived from cylinder-forming polystyrene-poly(methylmethacrylate) diblock copolymers

机译:形成圆柱状聚苯乙烯-聚(甲基丙烯酸甲酯)二嵌段共聚物的纳米孔内细胞色素c扩散的电化学研究

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摘要

This paper reports cyclic voltammograms of cytochrome c on recessed nanodisk-array electrodes (RNEs) based on nanoporous films (11, 14 or 24nm in average pore diameter; 30nm thick) derived from polystyrene-poly(methylmethacrylate) diblock copolymers. The faradic current of cytochrome c was observed on RNEs, indicating the penetration of cytochrome c (hydrodynamic diameter ≈ 4 nm) through the nanopores to the underlying electrodes. The faradic current on RNEs with 11- and 14-nm nanopores mainly originated from cytochrome c adsorbed on the underlying electrodes, whereas the current on RNEs with 24-nm pores was diffusion-controlled. Interestingly, the diffusion-controlled current of cytochrome c was significantly smaller than that estimated from the faradic current of 1,1'-ferrocenedimethanol on the RNEs. The smaller faradic current suggested more effective decrease in the diffusion coefficient of cytochrome c as compared to that of 1,1'-ferrocenedimethanol, which probably reflected enhanced steric and chemical interactions within the nanopores. Comparison between experimental data and results of finite-element computer simulations made it possible to assess the structure of the nanoporous films and the diffusion coefficients of redox species within the nanopores.
机译:本文报道了基于聚苯乙烯-聚(甲基丙烯酸甲酯)二嵌段共聚物的纳米多孔膜(平均孔径为11、14或24nm;厚度为30nm)的凹入式纳米盘阵列电极(RNE)上细胞色素c的循环伏安图。在RNE上观察到细胞色素c的法拉第电流,表明细胞色素c的渗透(流体力学直径≈4 nm)通过纳米孔穿透到下面的电极。具有11和14 nm纳米孔的RNE上的法拉第电流主要源自吸附在下面电极上的细胞色素c,而具有24 nm孔的RNE上的法拉第电流受到扩散控制。有趣的是,细胞色素c的扩散控制电流明显小于RNE上1,1'-二茂铁二甲醇的法拉第电流。与1,1'-二茂铁二甲醇相比,较小的法拉第电流表明细胞色素c的扩散系数更有效地降低,这可能反映了纳米孔内空间和化学相互作用的增强。实验数据和有限元计算机模拟结果之间的比较使评估纳米多孔膜的结构和氧化还原物质在纳米孔内的扩散系数成为可能。

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