School of Chemistry, University of New South Wales, Sydney NSW 2052, Australia.
Langmuir. 2011 Apr 5;27(7):4176-83. doi: 10.1021/la104373v. Epub 2011 Feb 24.
Forming stable gold nanoparticle (AuNP)-modified surface is important for a number of applications including sensing and electrocatalysis. Herein, tethering AuNPs to glassy carbon (GC) surfaces using surface bound diazonium salts is investigated as a strategy to produce stable AuNP surfaces. GC electrodes are first modified with 4-aminophenyl (GC-Ph-NH(2)), and then the terminal amine groups are converted to diazonium groups by incubating the GC-Ph-NH(2) interface in NaNO(2) and HCl solution to form a 4-phenyl diazonium chloride-modified interface (GC-Ph-N(2)(+)Cl(-)). Subsequently AuNPs are immobilized on the interface by electrochemical reduction to give a 4-phenyl AuNP-modified interface (GC-Ph-AuNP). For comparison, 4-aminophenyl AuNP- and 4-thiophenol AuNP-modified GC interfaces (GC-Ph-S-AuNP and GC-Ph-NH-AuNP), in which AuNPs are tethered to the surfaces by forming S-Au and NH-Au bond, respectively, were also prepared. Cyclic voltammetry, electrochemical impedance spectroscopy, X-ray photoelectron spectroscopy, and scanning electron microscopy are used to characterize these fabricated interfaces. The AuNP on GC-Ph-AuNP surfaces demonstrate good stability under sonication in Milli-Q water, during electrochemical treatment in 0.05 M H(2)SO(4) solution, and over several weeks. By contrast, the GC-Ph-NH-AuNP and GC-Ph-S-AuNP surfaces showed significant particle losses under equivalent conditions.
形成稳定的金纳米粒子(AuNP)修饰表面对于许多应用非常重要,包括传感和电催化。在此,使用表面结合的重氮盐将 AuNP 键合到玻璃碳(GC)表面,作为产生稳定 AuNP 表面的策略进行了研究。GC 电极首先用 4-氨基苯(GC-Ph-NH(2))修饰,然后通过将 GC-Ph-NH(2)界面在 NaNO(2)和 HCl 溶液中孵育将末端胺基转化为重氮基,形成 4-苯基重氮氯修饰界面(GC-Ph-N(2)(+)Cl(-))。随后,通过电化学还原将 AuNP 固定在界面上,得到 4-苯基 AuNP 修饰界面(GC-Ph-AuNP)。为了进行比较,还制备了通过形成 S-Au 和 NH-Au 键将 AuNP 键合到表面的 4-氨基苯 AuNP 和 4-巯基苯 AuNP 修饰的 GC 界面(GC-Ph-S-AuNP 和 GC-Ph-NH-AuNP)。使用循环伏安法、电化学阻抗谱、X 射线光电子能谱和扫描电子显微镜对这些制备的界面进行了表征。在 Milli-Q 水中超声、在 0.05 M H(2)SO(4)溶液中电化学处理以及数周内,GC-Ph-AuNP 表面上的 AuNP 表现出良好的稳定性。相比之下,在等效条件下,GC-Ph-NH-AuNP 和 GC-Ph-S-AuNP 表面的颗粒损失明显。