Carrasco Jose A, Cardona-Serra Salvador, Clemente-Juan Juan Modesto, Gaita-Ariño Alejandro, Abellán Gonzalo, Coronado Eugenio
Instituto de Ciencia Molecular (ICMol), Universidad de Valencia , Catedrático José Beltrán 2, 46980, Paterna, Valencia, Spain.
Department of Chemistry and Pharmacy and Joint Institute of Advanced Materials and Processes (ZMP), University Erlangen-Nürnberg , Henkestr. 42, 91054 Erlangen and Dr.-Mack Str. 81, 90762 Fürth, Germany.
Inorg Chem. 2018 Feb 19;57(4):2013-2022. doi: 10.1021/acs.inorgchem.7b02928. Epub 2018 Feb 8.
Layered double hydroxides (LDHs) exhibit unparalleled anion exchange properties and the ability to be exfoliated into 2D nanosheets, which can be used as a building block to fabricate a wide variety of hybrid functional nanostructured materials. Still, if one wants to use LDHs as a magnetic building blocks in the design of complex architectures, the role played by the dipolar magnetic interactions in these layered materials needs to be understood. In this work, we synthesized and characterized a five-membered CoAl-LDH series with basal spacing ranging from 7.5 to 34 Å. A detailed experimental characterization allows us to conclude that the main factor governing the dipolar interactions between magnetic layers cannot be the interlayer spacing. Supporting theoretical modeling suggests instead a relevant role for spin correlation size, which, in the limit, is related to the lateral dimension of the layer. These results highlight the importance of cation ordering in the magnetic behavior of LDHs, and underpin the differences with homometallic-layered hydroxides.
层状双氢氧化物(LDHs)具有无与伦比的阴离子交换特性以及剥离成二维纳米片的能力,这些纳米片可用作构建各种混合功能纳米结构材料的基本单元。然而,如果想要在复杂结构设计中使用LDHs作为磁性构建单元,就需要了解这些层状材料中偶极磁相互作用所起的作用。在这项工作中,我们合成并表征了一个五元CoAl-LDH系列,其基面间距范围为7.5至34 Å。详细的实验表征使我们能够得出结论,控制磁性层之间偶极相互作用的主要因素并非层间距。相反,支持性的理论建模表明自旋相关尺寸起着重要作用,在极限情况下,它与层的横向尺寸有关。这些结果突出了阳离子有序排列在LDHs磁行为中的重要性,并巩固了与同金属层状氢氧化物的差异。