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首页> 外文期刊>Nano letters >Nanoscale Surface Curvature Effects on Ligand-Nanoparticle Interactions: A Plasmon-Enhanced Spectroscopic Study of Thiolated Ligand Adsorption, Desorption, and Exchange on Gold Nanoparticles
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Nanoscale Surface Curvature Effects on Ligand-Nanoparticle Interactions: A Plasmon-Enhanced Spectroscopic Study of Thiolated Ligand Adsorption, Desorption, and Exchange on Gold Nanoparticles

机译:纳米级表面曲率对配体纳米粒子相互作用的影响:硫化配体吸附,解吸和金纳米粒子的交换的等离子体增强光谱研究

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摘要

The interfacial adsorption, desorption, and exchange behaviors of thiolated ligands on nanotextured Au nanoparticle surfaces exhibit phenomenal site-to-site variations essentially dictated by the local surface curvatures, resulting in heterogeneous thermodynamic and kinetic profiles remarkably more sophisticated than those associated with the self-assembly of organothiol ligand monolayers on atomically flat Au surfaces. Here we use plasmon-enhanced Raman scattering as a spectroscopic tool combining time-resolving and molecular fingerprinting capabilities to quantitatively correlate the ligand dynamics with detailed molecular structures in real time under a diverse set of ligand adsorption, desorption, and exchange conditions at both equilibrium and nonequilibrium states, which enables us to delineate the effects of nanoscale surface curvature on the binding affinity, cooperativity, structural ordering, and the adsorption/desorption/exchange kinetics of organothiol ligands on colloidal Au nanoparticles. This work provides mechanistic insights on the key thermodynamic, kinetic) and geometric factors underpinning the surface curvature-dependent interfacial ligand behaviors, which serve, as a central knowledge framework guiding the site-selective incorporation of desired surface functionalities into individual metallic nanoparticles for specific applications.
机译:纳米纹理Au纳米颗粒表面上硫醇化配体的界面吸附,解吸和交换行为表现出基本上由局部表面曲率决定的现象位点变化,从而比与自我相关联的那些更复杂的异质热力学和动力学曲线。在原子平面Au表面上组装有机噻ol配体单层。在这里,我们使用等离子体增强的拉曼散射作为一种光谱工具,组合时间分辨和分子指纹识别能力,以定量地将具有详细分子结构的配体动态实时地在两样的配体吸附,解吸和均衡的交换条件下实时地相关。非平衡状态,使我们能够描绘纳米级表面曲率对胶体Au纳米颗粒上有机噻唑配体的结合亲和力,合作,结构排序和吸附/解吸/交换动力学的影响。这项工作为关键热力学,动力学)和几何因素提供了支撑在表面曲率依赖性界面配体行为的关键热力学,动力学,作为指导特定应用的单独金属纳米粒子的中心知识框架作为中央知识框架的中心知识框架。

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