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金纳米粒子上柠檬酸层的结构研究:分子间相互作用在稳定纳米粒子中的作用。

Structural study of citrate layers on gold nanoparticles: role of intermolecular interactions in stabilizing nanoparticles.

机构信息

Department of Chemistry, University of Utah , 1400 East 315 South RM 2020, Salt Lake City, Utah 84112, United States.

出版信息

J Am Chem Soc. 2014 Feb 5;136(5):1907-21. doi: 10.1021/ja4097384. Epub 2014 Jan 14.

Abstract

The structure of citrate adlayers on gold nanoparticles (AuNPs) was investigated. Infrared (IR) and X-ray photoelectron spectroscopy (XPS) analyses indicate citrate anions are adsorbed on AuNPs through central carboxylate groups. A unique structure of adsorbed citrate is determined, and a pH-induced structural transition is presented. IR analysis probes dangling dihydrogen anions (H2Citrate(-)) and hydrogen bonding of carboxylic acid groups between adsorbed and dangling citrate anions. A contribution of steric repulsion between citrate layers to particle stability is characterized. Structure-based modeling, which is consistent with scanning tunneling microscopy (STM) and transmission electron microscopy (TEM) images in the literature, suggests organization details relating to the formation of self-assembled layers on (111), (110), and (100) surfaces of AuNPs. Adsorption characteristics of the citrate layer include the interaction between hydrogen-bonded citrate chains, bilayer formation, surface coverage, and chirality. The enthalpic gain from intermolecular interactions and the importance of molecular structure/symmetry on the adsorption are discussed. Combining the enthalpic factor with surface diffusion and adsorption geometry of (1,2)-dicarboxyl fragments on Au(111), H2Citrate(-) anions effectively stabilize the (111) surface of the AuNPs. The detailed understanding of intermolecular interactions in the molecular adlayer provides insight for nanoparticle formation and stabilization. We expect these findings will be relevant for other nanoparticles stabilized by hydroxy carboxylate-based amino acids and have broad implications in NP-based interfacial studies and applications.

摘要

研究了金纳米粒子(AuNPs)上柠檬酸酯的结构。红外(IR)和 X 射线光电子能谱(XPS)分析表明,柠檬酸根阴离子通过中心羧酸基团吸附在 AuNPs 上。确定了吸附柠檬酸的独特结构,并提出了 pH 诱导的结构转变。IR 分析探测到悬挂的二氢阴离子(H2Citrate(-))和吸附和悬挂柠檬酸根阴离子之间羧酸基团的氢键。表征了柠檬酸层之间的空间排斥对颗粒稳定性的贡献。基于结构的建模与文献中的扫描隧道显微镜(STM)和透射电子显微镜(TEM)图像一致,表明与 AuNPs(111)、(110)和(100)表面自组装层的形成有关的组织细节。柠檬酸层的吸附特性包括氢键结合的柠檬酸链之间的相互作用、双层形成、表面覆盖率和手性。讨论了分子间相互作用的焓增益以及分子结构/对称性对吸附的重要性。将焓因子与(1,2)-二羧酸片段在 Au(111)上的表面扩散和吸附几何形状相结合,H2Citrate(-)阴离子有效地稳定了 AuNPs 的(111)表面。对分子吸附层中分子间相互作用的详细了解为纳米颗粒的形成和稳定提供了深入的认识。我们期望这些发现将与其他基于羟基羧酸的氨基酸稳定的纳米颗粒有关,并对基于 NP 的界面研究和应用具有广泛的意义。

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