Department of Chemical Engineering, Indian Institute of Science, Bangalore, India.
Nanotechnology. 2012 Jun 29;23(25):255603. doi: 10.1088/0957-4484/23/25/255603. Epub 2012 May 31.
Realization of thermally and chemically durable, ordered gold nanostructures using bottom-up self-assembly techniques are essential for applications in a wide range of areas including catalysis, energy generation, and sensing. Herein, we describe a modular process for realizing uniform arrays of gold nanoparticles, with interparticle spacings of 2 nm and above, by using RF plasma etching to remove ligands from self-assembled arrays of ligand-coated gold nanoparticles. Both nanoscale imaging and macroscale spectroscopic characterization techniques were used to determine the optimal conditions for plasma etching, namely RF power, operating pressure, duration of treatment, and type of gas. We then studied the effect of nanoparticle size, interparticle spacing, and type of substrate on the thermal durability of plasma-treated and untreated nanoparticle arrays. Plasma-treated arrays showed enhanced chemical and thermal durability, on account of the removal of ligands. To illustrate the application potential of the developed process, robust SERS (surface-enhanced Raman scattering) substrates were formed using plasma-treated arrays of silver-coated gold nanoparticles that had a silicon wafer or photopaper as the underlying support. The measured value of the average SERS enhancement factor (2 × 10(5)) was quantitatively reproducible on both silicon and paper substrates. The silicon substrates gave quantitatively reproducible results even after thermal annealing. The paper-based SERS substrate was also used to swab and detect probe molecules deposited on a solid surface.
采用自下而上的自组装技术实现热稳定性和化学稳定性强、有序的金纳米结构对于在催化、能源生成和传感等广泛领域的应用至关重要。在此,我们描述了一种通过射频等离子体刻蚀从配体包覆的金纳米粒子自组装阵列中去除配体来实现具有 2nm 及以上的粒子间间距的均匀金纳米粒子阵列的模块化工艺。纳米级成像和宏观光谱表征技术都被用于确定等离子体刻蚀的最佳条件,即射频功率、工作压力、处理时间和气体类型。然后,我们研究了纳米粒子尺寸、粒子间间距和基底类型对等离子体处理和未处理纳米粒子阵列热稳定性的影响。由于配体的去除,等离子体处理的阵列表现出增强的化学和热稳定性。为了说明所开发工艺的应用潜力,使用等离子体处理的银包覆金纳米粒子阵列在硅片或光纸上形成了稳健的 SERS(表面增强拉曼散射)基底。在硅和纸上都可以定量重现平均 SERS 增强因子(2×10(5))的测量值。即使经过热退火,硅基底也能给出定量重现的结果。基于纸张的 SERS 基底也用于擦拭和检测在固体表面上沉积的探针分子。