Oestreicher Víctor, Hunt Diego, Torres-Cavanillas Ramón, Abellán Gonzalo, Scherlis Damián A, Jobbágy Matías
Departamento de Química Inorgánica, Analítica y Química Física/INQUIMAE, Facultad de Ciencias Exactas y Naturales , Universidad de Buenos Aires , Ciudad Universitaria, Pab. II, Buenos Aires C1428EHA , Argentina.
Instituto de Ciencia Molecular (ICMol) , Universidad de Valencia , Catedrático José Betrán 2 , 46980 Valencia , Spain.
Inorg Chem. 2019 Jul 15;58(14):9414-9424. doi: 10.1021/acs.inorgchem.9b01252. Epub 2019 Jul 5.
The present study introduces a comprehensive exploration in terms of physicochemical characterization and calculations based on density functional theory with Hubbard's correction (DFT+U) of the whole family of α-Co(II) hydroxyhalide (F, Cl, Br, I). These samples were synthesized at room temperature by employing a one-pot approach based on the epoxide route. A thorough characterization (powder X-ray diffraction, X-ray photoelectron spectroscopy, thermogravimetric analysis/mass spectroscopy, and magnetic and conductivity measurements) corroborated by simulation is presented that analyzes the structural, magnetic, and electronic aspects. Beyond the inherent tendency of intercalated anions to modify the interlayer distance, the halide's nature has a marked effect on several aspects. Such as the modulation of the Co to Co ratio, as well as the inherent tendency towards dehydration and irreversible decomposition. Whereas the magnetic behavior is strongly correlated with the Co amount reflected in the presence of glassy behavior with high magnetic disorder, the electrical properties depend mainly on the nature of the halide. The computed electronic structures suggest that the Co molar fraction exerts a minor effect on the inherent conductivity of the phases. However, the band gap of the solid turns out to be significantly dependent on the nature of the incorporated halide, governed by ligand to metal charge transfer, which minimizes the gap as the anionic radius becomes larger. Conductivity measurements of pressed pellets confirm this trend. To the best of our knowledge, this is the first report on the magnetic and electrical properties of α-Co(II) hydroxyhalides validated with in silico descriptions, opening the gate for the rational design of layered hydroxylated phases with tunable electrical, optical, and magnetic properties.
本研究对整个α-Co(II)卤氧化物家族(F、Cl、Br、I)进行了基于含哈伯德修正的密度泛函理论(DFT+U)的物理化学表征及计算方面的全面探索。这些样品在室温下采用基于环氧化物路线的一锅法合成。通过模拟证实,给出了全面的表征(粉末X射线衍射、X射线光电子能谱、热重分析/质谱以及磁性和电导率测量),分析了结构、磁性和电子方面。除了插层阴离子改变层间距离的固有趋势外,卤化物的性质在几个方面有显著影响。例如对Co与Co比例的调制,以及脱水和不可逆分解的固有趋势。磁性行为与高磁无序的玻璃态行为中反映的Co含量密切相关,而电学性质主要取决于卤化物的性质。计算得到的电子结构表明,Co摩尔分数对各相的固有电导率影响较小。然而,固体的带隙结果明显取决于掺入卤化物的性质,由配体到金属的电荷转移控制,随着阴离子半径增大,带隙最小化。压制颗粒的电导率测量证实了这一趋势。据我们所知,这是首次关于α-Co(II)卤氧化物的磁性和电学性质的报告,并通过计算机模拟描述进行了验证,为合理设计具有可调电学、光学和磁性性质的层状羟基化相打开了大门。