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Ligand Structure Determines Nanoparticles Atomic Structure Metal-Ligand Interface and Properties

机译:配体结构决定纳米粒子的原子结构金属-配体界面和性质

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摘要

The nature of the ligands dictates the composition, molecular formulae, atomic structure and the physical properties of thiolate protected gold nanomolecules, Aun(SR)m. In this review, we describe the ligand effect for three classes of thiols namely, aliphatic, AL or aliphatic-like, aromatic, AR, or bulky, BU thiol ligands. The ligand effect is demonstrated using three experimental setups namely: (1) The nanomolecule series obtained by direct synthesis using AL, AR, and BU ligands; (2) Molecular conversion and interconversion between Au38(S-AL)24, Au36(S-AR)24, and Au30(S-BU)18 nanomolecules; and (3) Synthesis of Au38, Au36, and Au30 nanomolecules from one precursor Aun(S-glutathione)m upon reacting with AL, AR, and BU ligands. These nanomolecules possess unique geometric core structure, metal-ligand staple interface, optical and electrochemical properties. The results unequivocally demonstrate that the ligand structure determines the nanomolecules' atomic structure, metal-ligand interface and properties. The direct synthesis approach reveals that AL, AR, and BU ligands form nanomolecules with unique atomic structure and composition. Similarly, the nature of the ligand plays a pivotal role and has a significant impact on the passivated systems such as metal nanoparticles, quantum dots, magnetic nanoparticles and self-assembled monolayers (SAMs). Computational analysis demonstrates and predicts the thermodynamic stability of gold nanomolecules and the importance of ligand-ligand interactions that clearly stands out as a determining factor, especially for species with AL ligands such as Au38(S-AL)24.
机译:配体的性质决定了硫醇盐保护的金纳米分子Aun(SR)m的组成,分子式,原子结构和物理性质。在这篇综述中,我们描述了三类硫醇的配体效应,即脂族,AL或脂族样,芳族,AR或庞大的BU硫醇配体。使用三种实验装置证明了配体的作用,即:(1)通过使用AL,AR和BU配体直接合成获得的纳米分子系列; (2)Au38(S-AL)24,Au36(S-AR)24和Au30(S-BU)18纳米分子的分子转化和相互转化; (3)与AL,AR和BU配体反应后,由一种前体Aun(S-谷胱甘肽)m合成Au38,Au36和Au30纳米分子。这些纳米分子具有独特的几何核心结构,金属-配体钉界面,光学和电化学性质。结果清楚地表明,配体结构决定了纳米分子的原子结构,金属-配体界面和性质。直接合成方法表明,AL,AR和BU配体形成具有独特原子结构和组成的纳米分子。同样,配体的性质也起着举足轻重的作用,并且对诸如金属纳米粒子,量子点,磁性纳米粒子和自组装单分子层(SAMs)等钝化系统具有重大影响。计算分析证明并预测了金纳米分子的热力学稳定性以及配体-配体相互作用的重要性,这一点显然是决定性因素,特别是对于具有AL配体的物种,例如Au38(S-AL)24。

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