Zhang Hong, Lu Haiyun, Hu Naifei
Department of Chemistry, Beijing Normal University, Beijing 100875, P. R. China.
J Phys Chem B. 2006 Feb 9;110(5):2171-9. doi: 10.1021/jp055301f.
Alternate adsorption of oppositely charged myoglobin (Mb) and gold nanoparticles with different sizes were used to assemble {Au/Mb}n layer-by-layer films on solid surfaces by electrostatic interaction between them. The direct electrochemistry of Mb was realized in {Au/Mb}n films at pyrolytic graphite (PG) electrodes, showing a pair of well-defined, nearly reversible cyclic voltammetry (CV) peaks for the Mb heme FeIII/FeII redox couple. Quartz crystal microbalance (QCM), electrochemical impedance spectroscopy (EIS), and CV were used to monitor or confirm the growth of the films. Compared with other Mb layer-by-layer films with nonconductive nanoparticles or polyions, {Au/Mb}n films showed much improved properties, such as smaller electron-transfer resistance (Rct) measured by EIS with Fe(CN)3-/4- redox probe, higher maximum surface concentration of electroactive Mb (Gammamax), and better electrocatalytic activity toward reduction of O2 and H2O2, mainly because of the good conductivity of Au nanoparticles. Because of the high biocompatibility of Au nanoparticles, adsorbed Mb in the films retained its near native structure and biocatalytic activity. The size effect of Au nanoparticles on the electrochemical and electrocatalytic activity of Mb in {Au/Mb}n films was investigated, demonstrating that the {Au/Mb}n films assembled with smaller-sized Au nanoparticles have smaller Rct, higher Gammamax, and better biocatalytic reactivity than those with larger size.
利用带相反电荷的肌红蛋白(Mb)和不同尺寸的金纳米粒子交替吸附,通过它们之间的静电相互作用在固体表面组装{Au/Mb}n层状膜。Mb在热解石墨(PG)电极上的{Au/Mb}n膜中实现了直接电化学,显示出Mb血红素FeIII/FeII氧化还原对的一对定义明确、近乎可逆的循环伏安法(CV)峰。采用石英晶体微天平(QCM)、电化学阻抗谱(EIS)和CV来监测或确认膜的生长。与其他含有非导电纳米粒子或聚离子的Mb层状膜相比,{Au/Mb}n膜表现出更好的性能,例如用Fe(CN)3-/4-氧化还原探针通过EIS测量的电子转移电阻(Rct)更小、电活性Mb的最大表面浓度(Gammamax)更高以及对O2和H2O2还原的电催化活性更好,这主要是由于金纳米粒子具有良好的导电性。由于金纳米粒子具有高生物相容性,膜中吸附的Mb保留了其接近天然的结构和生物催化活性。研究了金纳米粒子尺寸对{Au/Mb}n膜中Mb的电化学和电催化活性的影响,结果表明,与较大尺寸的金纳米粒子组装的{Au/Mb}n膜相比,较小尺寸的金纳米粒子组装的{Au/Mb}n膜具有更小的Rct、更高的Gammamax和更好的生物催化反应性。