Lanthanide-based metal–organic frameworks (Ln-MOFs): synthesis, properties and applications

Kankan Patra and Haridas Pal
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Abstract

Micro- and meso-porous solid materials based on metal–organic frameworks (MOFs) have been gaining significant attention for the last three decades as they offer diverse applications in a large number of areas. An advantage of these materials is that they can be rationally designed with desired characteristics using several metal ions belonging either to the s-, p-, d-, or f-block elements of the periodic table, in combination with suitable polytopic organic linkers (multidentate ligands), resulting in various structural and application aspects. Among the MOFs, those composed of lanthanide ions {Ln(III)}, commonly referred to as Ln-MOF systems, have attracted enormous attention because they display favorable characteristics, like large structural diversity, tailorable structural designs, tunable porosity, large surface area, high thermal stability, and immense chemical stability. All these characteristics are very useful for their widespread applications in diverse areas. Since Ln(III) ions possess higher coordination numbers compared to transition metal (TM) ions, Ln-MOF materials are generally more porous, offering better applications. Further, hybrid MOF systems consisting of both Ln(III) and TM ions (Ln–TM-MOF systems) can introduce additional features to these mixed metal porous materials for their much wider applications. Luminescence and magnetic properties of Ln(III) ions make these materials ideal for various display and sensing applications, in addition to their porosity-related applications. In this review article, our aim is to discuss the basic aspects, preparation methodologies, important properties, and utilizations of MOF materials with a special emphasis on Ln(III)-based MOF systems. Initially, a short introduction is provided on MOF systems, which is followed by other aspects of these materials as mentioned above. Subsequently, we sequentially highlight the interesting characteristics of these materials, including their structural aspects, porosity, magnetic properties, and luminescence behavior. Finally, some of the potential uses of these systems have been presented with special emphasis on their gas storage, catalysis and luminescence-based chemical sensing applications.

Abstract Image

镧系金属有机骨架(mn - mofs):合成、性能及应用
基于金属有机骨架(mof)的微孔和介孔固体材料在过去三十年中获得了广泛的关注,因为它们在许多领域提供了不同的应用。这些材料的一个优点是,它们可以使用元素周期表中的s-, p-, d-或f-块元素中的几种金属离子,结合合适的多面体有机连接体(多齿配体),合理地设计出具有所需特性的材料,从而产生各种结构和应用方面。其中,由镧系离子{Ln(III)}组成的mof体系通常被称为Ln- mof体系,因其具有结构多样性大、结构设计可定制、孔隙度可调、比表面积大、热稳定性高、化学稳定性好等优点而受到广泛关注。所有这些特性都为其在不同领域的广泛应用提供了有利条件。由于与过渡金属(TM)离子相比,Ln(III)离子具有更高的配位数,因此Ln- mof材料通常更具多孔性,具有更好的应用。此外,由Ln(III)和TM离子组成的混合MOF系统(Ln - TM-MOF系统)可以为这些混合金属多孔材料带来更多的特性,使其应用范围更广。Ln(III)离子的发光和磁性使这些材料非常适合各种显示和传感应用,以及与孔隙率相关的应用。在这篇综述文章中,我们的目的是讨论MOF材料的基本方面,制备方法,重要的性质和利用,特别强调以Ln(III)为基础的MOF系统。首先,对MOF系统进行了简短的介绍,然后是上述这些材料的其他方面。随后,我们依次强调了这些材料的有趣特征,包括它们的结构方面,孔隙率,磁性和发光行为。最后,介绍了这些系统的一些潜在用途,特别强调了它们的气体储存、催化和基于发光的化学传感应用。
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