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实时等离子体监测单金汞齐纳米合金电化学形成和剥离。

Real-Time Plasmonic Monitoring of Single Gold Amalgam Nanoalloy Electrochemical Formation and Stripping.

机构信息

Key Laboratory for Advanced Materials & Department of Chemistry, East China University of Science and Technology , 130 Meilong Road, Shanghai 200237, P. R. China.

School of Chemistry, University of Birmingham , Edgbaston, Birmingham, West Midlands B15 2TT, U.K.

出版信息

ACS Appl Mater Interfaces. 2016 Mar;8(12):8305-14. doi: 10.1021/acsami.6b01029. Epub 2016 Mar 15.

Abstract

Direct electrodeposition of mercury onto gold nanorods on an ITO substrate, without reducing agents, is reported. The growth of single gold amalgam nanoalloy particles and subsequent stripping was monitored in real-time monitoring by plasmonic effects and single-nanoparticle dark-field spectroelectrochemistry techniques. Time-dependent scattering spectral information conferred insight into the growth and stripping mechanism of a single nanoalloy particle. Four critical stages were observed: First, rapid deposition of Hg atoms onto Au nanorods; second, slow diffusion of Hg atoms into Au nanorods; third, prompt stripping of Hg atoms from Au nanorods; fourth, moderate diffusion from the inner core of Au nanorods. Under high Hg(2+) concentrations, homogeneous spherical gold amalgam nanoalloys were obtained. These results demonstrate that the morphology and composition of individual gold amalgam nanoalloys can be precisely regulated electrochemically. Moreover, gold amalgam nanoalloys with intriguing optical properties, such as modulated plasmonic lifetimes and quality factor Q, could be obtained. This may offer opportunities to extend applications in photovoltaic energy conversion and chemical sensing.

摘要

直接在 ITO 衬底上的金纳米棒上电沉积汞,无需还原剂。通过等离子体效应和单纳米粒子暗场光谱电化学技术实时监测单金汞纳米合金粒子的生长和随后的剥离。时间相关的散射光谱信息深入了解了单个纳米合金粒子的生长和剥离机制。观察到四个关键阶段:第一,Hg 原子快速沉积到 Au 纳米棒上;第二,Hg 原子缓慢扩散到 Au 纳米棒中;第三,Hg 原子从 Au 纳米棒中迅速剥离;第四,Au 纳米棒内部核心适度扩散。在高 Hg(2+)浓度下,获得了均匀的球形金汞纳米合金。这些结果表明,可以精确地通过电化学调节单个金汞纳米合金的形态和组成。此外,还可以获得具有有趣光学性质的金汞纳米合金,例如调制的等离子体寿命和品质因数 Q。这可能为扩展在光伏能量转换和化学传感中的应用提供机会。

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