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选择用于铁纳米颗粒热分解溶液相合成的合适前驱体:二茂铁衍生物的可调解离能

Choosing the right precursor for thermal decomposition solution-phase synthesis of iron nanoparticles: tunable dissociation energies of ferrocene derivatives.

作者信息

Kelly Cameron H W, Lein Matthias

机构信息

School of Chemical and Physical Sciences (SCPS), Victoria University of Wellington, New Zealand.

出版信息

Phys Chem Chem Phys. 2016 Nov 30;18(47):32448-32457. doi: 10.1039/c6cp06921e.

DOI:10.1039/c6cp06921e
PMID:27869261
Abstract

Organometallic coordination compounds in general and metallocenes in particular are convenient precursors for the synthesis of metal nanoparticles through thermal decomposition. The strength of the interaction between the metal ion and its ligands determines the conditions under which decomposition occurs, most importantly the range of temperatures and pressures at which a given compound is useful as a precursor. We show that a comprehensive analysis of all individual contributions to the ligand metal interactions that establishes the nature of the interaction can be used to select compounds that are tuned to a specific dissociation energy with advantageous properties under experimental conditions. To this end, we apply the Morokuma-Ziegler-Energy Decomposition Analysis (MZ-EDA) to a series of ferrocene analogues using high-level density functional theory (DFT). We find that asymmetrically substituted ferrocene derivatives are unlikely to be useful as precursors because of the large energy required to remove the second cyclopentadienyl-derivative from the central iron atom. However, we are able to establish that symmetrically substituted chloroferrocenes exhibit a wide range of relatively low bond dissociation energies for both dissociation steps and are hence good candidates for the synthesis of highly mono-disperse iron nanoparticles.

摘要

一般来说,有机金属配位化合物,特别是二茂金属,是通过热分解合成金属纳米颗粒的便利前驱体。金属离子与其配体之间相互作用的强度决定了分解发生的条件,最重要的是给定化合物作为前驱体有用的温度和压力范围。我们表明,对所有对配体-金属相互作用的单独贡献进行全面分析,以确定相互作用的性质,可用于选择在实验条件下能调整到具有有利性质的特定解离能的化合物。为此,我们使用高水平密度泛函理论(DFT)将Morokuma-Ziegler能量分解分析(MZ-EDA)应用于一系列二茂铁类似物。我们发现,不对称取代的二茂铁衍生物不太可能用作前驱体,因为从中心铁原子上去除第二个环戊二烯基衍生物需要大量能量。然而,我们能够确定,对称取代的氯代二茂铁在两个解离步骤中都表现出广泛的相对较低的键解离能,因此是合成高度单分散铁纳米颗粒的良好候选物。

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