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Structural and Electronic Properties of Micellar Au Nanoparticles: Size and Ligand Effects

机译:胶束金纳米颗粒的结构和电子性质:尺寸和配体效应。

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Gaining experimental insight into the intrinsic properties of nanoparticles (NPs) represents a scientific challenge due to the difficulty of deconvoluting these properties from various environmental effects such as the presence of adsorbates or a support. A synergistic combination of experimental and theoretical tools, including X-ray absorption fine-structure spectroscopy, scanning transmission electron microscopy, atomic force microscopy, and density functional theory was used in this study to investigate the structure and electronic properties of small (~1-4 nm) Au NPs synthesized by an inverse micelle encapsulation method. Metallic Au NPs encapsulated by polystyrene 2-vinylpiridine (PS-P2VP) were studied in the solution phase (dispersed in toluene) as well as after deposition on γ-Al_2O_3. Our experimental data revealed a size-dependent contraction of the interatomic distances of the ligand-protected NPs with decreasing NP size. These findings are in good agreement with the results from DFT calculations of unsupported Au NPs surrounded by P2VP, as well as those obtained for pure (ligand-free) Au clusters of analogous sizes. A comparison of the experimental and theoretical results supports the conclusion that the P2VP ligands employed to stabilize the gold NPs do not lead to strong distortions in the average interatomic spacing. The changes in the electronic structure of the Au-P2VP NPs were found to originate mainly from finite size effects and not from charge transfer between the NPs and their environment (e.g., Au-ligand interactions). In addition, the isolated ligand-protected experimental NPs only display a weak interaction with the support, making them an ideal model system for the investigation of sizedependent physical and chemical properties of structurally well-defined nanomaterials.
机译:对纳米颗粒(NPs)的固有特性进行实验性研究代表了一项科学挑战,这是由于难以将这些特性与各种环境效应(例如吸附质或载体的存在)解卷积。本研究使用实验和理论工具的协同组合,包括X射线吸收精细结构光谱学,扫描透射电子显微镜,原子力显微镜和密度泛函理论,以研究小分子(〜1- 4nm)通过反胶束封装方法合成的Au NP。研究了在溶液相中(分散在甲苯中)以及沉积在γ-Al_2O_3上的聚苯乙烯2-乙烯基吡啶(PS-P2VP)包裹的金属Au NP。我们的实验数据显示,随着NP尺寸的减小,配体保护的NP原子间距离的尺寸依赖性收缩。这些发现与被P2VP包围的不受支持的Au NP的DFT计算结果以及从类似大小的纯(无配体)Au簇获得的结果完全吻合。实验和理论结果的比较支持以下结论:用于稳定金NP的P2VP配体不会导致平均原子间距的强烈扭曲。发现Au-P2VP NP的电子结构变化主要源自有限尺寸效应,而不是源自NP及其周围环境之间的电荷转移(例如Au-配体相互作用)。此外,分离的配体保护的实验NP仅显示与载体的弱相互作用,使其成为研究结构明确的纳米材料的尺寸依赖性物理和化学性质的理想模型系统。

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