Ferrite Nanoparticles as Catalysts in Organic Reactions: A Mini Review

IF 2.6 4区 化学 Q2 CHEMISTRY, INORGANIC & NUCLEAR
Nilima Maji, H. S. Dosanjh
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引用次数: 1

Abstract

Ferrites have excellent magnetic, electric, and optical properties that make them an indispensable choice of material for a plethora of applications, such as in various biomedical fields, magneto–optical displays, rechargeable lithium batteries, microwave devices, internet technology, transformer cores, humidity sensors, high-frequency media, magnetic recordings, solar energy devices, and magnetic fluids. Recently, magnetically recoverable nanocatalysts are one of the most prominent fields of research as they can act both as homogeneous and heterogenous catalysts. Nano-ferrites provide a large surface area for organic groups to anchor, increase the product and decrease reaction time, providing a cost-effective method of transformation. Various organic reactions were reported, such as the photocatalytic decomposition of a different dye, alkylation, dehydrogenation, oxidation, C–C coupling, etc., with nano-ferrites as a catalyst. Metal-doped ferrites with Co, Ni, Mn, Cu, and Zn, along with the metal ferrites doped with Mn, Cr, Cd, Ag, Au, Pt, Pd, or lanthanides and surface modified with silica and titania, are used as catalysts in various organic reactions. Metal ferrites (MFe2O4) act as a Lewis acid and increase the electrophilicity of specific groups of the reactants by accepting electrons in order to form covalent bonds. Ferrite nanocatalysts are easily recoverable by applying an external magnetic field for their reuse without significantly losing their catalytic activities. The use of different metal ferrites in different organic transformations reduces the catalyst overloading and, at the same time, reduces the use of harmful solvents and the production of poisonous byproducts, hence, serving as a green method of chemical synthesis. This review provides insight into the application of different ferrites as magnetically recoverable nanocatalysts in different organic reactions and transformations.
铁氧体纳米粒子作为有机反应催化剂的研究进展
铁氧体具有优异的磁、电和光学性能,使其成为众多应用不可或缺的材料选择,例如在各种生物医学领域、磁光显示器、可充电锂电池、微波设备、互联网技术、变压器芯、湿度传感器、高频介质、磁记录、太阳能设备,以及磁性流体。最近,磁性可回收纳米催化剂是最突出的研究领域之一,因为它们既可以作为均相催化剂,也可以作为非均相催化剂。纳米铁氧体为有机基团锚定提供了大的表面积,增加了产物并缩短了反应时间,提供了一种具有成本效益的转化方法。报道了以纳米铁氧体为催化剂的各种有机反应,如不同染料的光催化分解、烷基化、脱氢、氧化、C–C偶联等。具有Co、Ni、Mn、Cu和Zn的金属掺杂铁氧体,以及掺杂有Mn、Cr、Cd、Ag、Au、Pt、Pd或镧系元素并用二氧化硅和二氧化钛表面改性的金属铁氧体被用作各种有机反应中的催化剂。金属铁氧体(MFe2O4)作为路易斯酸,通过接受电子以形成共价键来增加反应物特定基团的亲电性。铁氧体纳米催化剂通过施加外部磁场进行再利用而易于回收,而不会显著丧失其催化活性。在不同的有机转化中使用不同的金属铁氧体减少了催化剂的过载,同时减少了有害溶剂的使用和有毒副产物的产生,因此是一种绿色的化学合成方法。这篇综述深入了解了不同铁氧体作为磁性可回收纳米催化剂在不同有机反应和转化中的应用。
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来源期刊
Magnetochemistry
Magnetochemistry Chemistry-Chemistry (miscellaneous)
CiteScore
3.90
自引率
11.10%
发文量
145
审稿时长
11 weeks
期刊介绍: Magnetochemistry (ISSN 2312-7481) is a unique international, scientific open access journal on molecular magnetism, the relationship between chemical structure and magnetism and magnetic materials. Magnetochemistry publishes research articles, short communications and reviews. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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