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聚合物和树枝状聚合物包覆的磁性纳米粒子作为催化剂、清除剂和试剂的通用载体。

Polymer- and dendrimer-coated magnetic nanoparticles as versatile supports for catalysts, scavengers, and reagents.

机构信息

Institute for Organic Chemistry, University of Regensburg , 93053 Regensburg, Germany.

出版信息

Acc Chem Res. 2014 Feb 18;47(2):667-77. doi: 10.1021/ar400236y. Epub 2014 Jan 8.

Abstract

The work-up of chemical reactions by standard techniques is often time consuming and energy demanding, especially when chemists have to guarantee low levels of metal contamination in the products. Therefore, scientists need new ideas to rapidly purify reaction mixtures that are both economically and environmentally benign. One intriguing approach is to tether functionalities that are required to perform organic reactions to magnetic nanoparticles, for example, catalysts, reagents, scavengers, or chelators. This strategy allows researchers to quickly separate active agents from reaction mixtures by exploiting the magnetic properties of the support. In this Account, we discuss the main attributes of magnetic supports and describe how we can make the different nanomagnets accessible by surface functionalization. Arguably the most prominent magnetic nanoparticles are superparamagnetic iron oxide nanoparticles (SPIONs) due to their biologically well-accepted constituents, their established size-selective synthesis methods, and their diminished agglomeration (no residual magnetic attraction in the absence of an external magnetic field). However, nanoparticles made of pure metal have a considerably higher magnetization level that is useful in applications where high loadings are needed. A few layers of carbon can efficiently shield such highly reactive metal nanoparticles and, equally important, enable facile covalent functionalization via diazonium chemistry or non-covalent functionalization through π-π interactions. We highlight carbon-coated cobalt (Co/C) and iron (Fe/C) nanoparticles in this Account and compare them to SPIONs stabilized with surfactants or silica shells. The graphene-like coating of these nanoparticles offers only low loadings with functional groups via direct surface modification, and the resulting nanomagnets are prone to agglomeration without effective steric stabilization. To overcome these restrictions and to tune the dispersibility of the magnetic supports in different solvents, we can introduce dendrimers and polymers on Co/C and Fe/C platforms by various synthetic strategies. While dendrimers have the advantage of being able to array all functional groups on the surface, polymers need fewer synthetic steps and higher molecular weight analogues are easily accessible. We present the application of these promising hybrid materials for the extraction of analytes or contaminates from complex aqueous solutions (e.g. waste water treatments or blood analytics), for metal-, organo-, and biocatalysis, and in organic synthesis. In addition, we describe advanced concepts like magnetic protecting groups, a multistep synthesis solely applying magnetic reagents and scavengers, and thermoresponsive self-separating magnetic catalysts. We also discuss the first examples of the use of magnetic scaffolds manipulated by external magnetic fields in flow reactors on the laboratory scale. These hold promise for future applications of magnetic hybrid materials in continuous flow or highly parallelized syntheses with rapid magnetic separation of the applied resins.

摘要

通过标准技术对化学反应进行研究通常既耗时又耗能,尤其是当化学家必须保证产品中金属污染物的含量处于低水平时。因此,科学家们需要新的想法来快速纯化反应混合物,同时还要兼顾经济性和环境友好性。一种很有前途的方法是将进行有机反应所需的功能键接到磁性纳米颗粒上,例如催化剂、试剂、清除剂或螯合剂。通过利用载体的磁性能,该策略可以使研究人员快速地从反应混合物中分离出活性物质。在本专题介绍中,我们将讨论磁性载体的主要特性,并描述如何通过表面功能化使不同的纳米磁铁变得易于使用。由于其具有生物相容性的组成部分、已建立的尺寸选择性合成方法以及低聚集性(在没有外部磁场的情况下没有残留的磁性吸引力),超顺磁氧化铁纳米颗粒(SPIONs)无疑是最突出的磁性纳米颗粒。然而,由纯金属制成的纳米颗粒具有更高的磁化水平,在需要高负载的应用中非常有用。几层碳可以有效地屏蔽这些高反应性的金属纳米颗粒,同样重要的是,通过重氮化学或通过π-π相互作用进行非共价功能化,可以实现其简便的共价功能化。在本专题介绍中,我们重点介绍了碳涂覆的钴(Co/C)和铁(Fe/C)纳米颗粒,并将其与用表面活性剂或二氧化硅壳稳定的 SPIONs 进行了比较。这些纳米颗粒的类石墨烯涂层仅通过直接表面改性提供低负载量的官能团,并且所得纳米磁铁在没有有效空间稳定的情况下容易聚集。为了克服这些限制并调整磁性载体在不同溶剂中的分散性,我们可以通过各种合成策略将树枝状聚合物和聚合物引入 Co/C 和 Fe/C 平台上。虽然树枝状聚合物具有能够将所有官能团排列在表面上的优点,但聚合物需要较少的合成步骤,并且更容易获得高分子量类似物。我们介绍了这些有前途的混合材料在从复杂水溶液中提取分析物或污染物(例如废水处理或血液分析)、金属、有机和生物催化以及有机合成中的应用。此外,我们还描述了一些高级概念,例如磁性保护基团、仅使用磁性试剂和清除剂的多步合成以及热敏自分离磁性催化剂。我们还讨论了在实验室规模的流动反应器中使用外部磁场操纵磁性支架的第一个示例。这些为在连续流或高度并行化合成中应用磁性混合材料提供了快速磁分离应用树脂的未来应用的希望。

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