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点击树枝状大分子和三唑相关内容:催化剂、机理、合成和功能。树枝状架构与纳米材料之间的桥梁。

Click dendrimers and triazole-related aspects: catalysts, mechanism, synthesis, and functions. A bridge between dendritic architectures and nanomaterials.

机构信息

Institut des Sciences Moléculaires, UMR CNRS No. 5255, Université Bordeaux 1, 33405 Talence Cedex, France.

出版信息

Acc Chem Res. 2012 Apr 17;45(4):630-40. doi: 10.1021/ar200235m. Epub 2011 Dec 8.

Abstract

One of the primary recent improvements in molecular chemistry is the now decade-old concept of click chemistry. Typically performed as copper-catalyzed azide-alkyne (CuAAC) Huisgen-type 1,3-cycloadditions, this reaction has many applications in biomedicine and materials science. The application of this chemistry in dendrimer synthesis beyond the zeroth generation and in nanoparticle functionalization requires stoichiometric use of the most common click catalyst, CuSO(4)·5H(2)O with sodium ascorbate. Efforts to develop milder reaction conditions for these substrates have led to the design of polydentate nitrogen ligands. Along these lines, we have described a new, efficient, practical, and easy-to-synthesize catalytic complex, [Cu(I)(hexabenzyltren)]Br, 1 [tren = tris(2-aminoethyl)amine], for the synthesis of relatively large dendrimers and functional gold nanoparticles (AuNPs). This efficient catalyst can be used alone in 0.1% mol amounts for nondendritic click reactions or with the sodium-ascorbate additive, which inhibits aerobic catalyst oxidation. Alternatively, catalytic quantities of the air-stable compounds hexabenzyltren and CuBr added to the click reaction medium can provide analogously satisfactory results. Based on this catalyst as a core, we have also designed and synthesized analogous Cu(I)-centered dendritic catalysts that are much less air-sensitive than 1 and are soluble in organic solvents or in water (depending on the nature of the terminal groups). These multivalent catalysts facilitate efficient click chemistry and exert positive dendritic effects that mimic enzyme activity. We propose a monometallic CuAAC click mechanism for this process. Although the primary use of click chemistry with dendrimers has been to decorate dendrimers with a large number of molecules for medicinal or materials purposes, we are specifically interested in the formation of intradendritic [1,2,3]-triazole heterocycles that coordinate to transition-metal ions via their nitrogen atoms. We describe applications including molecular recognition of anions and cations and the stabilization of transition metal nanoparticles according to a principle pioneered by Crooks with poly(amido amine) (PAMAM) dendrimers, and in particular, the control of structural and reactivity parameters in which the intradendritic [1,2,3]-triazoles and peripheral tripodal tri(ethylene glycol) termini play key roles in the click-dendrimer mediated synthesis and stabilization of gold nanoparticles (AuNPs). By varying these parameters, we have stabilized water-soluble, weakly liganded AuNPs between 1.8 and 50 nm in size and have shown large differences in behavior between AuNPs and PdNPs. Overall, the new catalyst design and the possibilities of click dendrimer chemistry introduce a bridge between dendritic architectures and the world of nanomaterials for multiple applications.

摘要

近年来,分子化学领域的一项重要进展是点击化学这一已有十年历史的概念。点击化学通常采用铜催化的叠氮-炔烃(CuAAC)Huisgen 型 1,3-环加成反应,在生物医学和材料科学中有广泛的应用。该化学在树枝状聚合物合成中超出第一代和纳米粒子功能化方面的应用需要使用最常见的点击催化剂,即硫酸铜(CuSO4·5H2O)与抗坏血酸钠的化学计量比。为了开发这些底物的更温和的反应条件,人们设计了多齿氮配体。在此基础上,我们设计并合成了一种新型、高效、实用且易于合成的催化配合物 [Cu(I)(hexabenzyltren)]Br,1 [tren = tris(2-aminoethyl)amine],用于相对较大的树枝状聚合物和功能化金纳米粒子(AuNPs)的合成。这种高效的催化剂可以单独以 0.1%摩尔的量用于非树枝状点击反应,也可以与抗坏血酸钠添加剂一起使用,后者可以抑制有氧催化剂氧化。或者,将空气稳定的化合物六亚苄基三胺和 CuBr 的催化量添加到点击反应介质中,也可以提供类似令人满意的结果。基于这种催化剂作为核心,我们还设计并合成了类似的以 Cu(I)为中心的树枝状催化剂,与 1 相比,它们的空气敏感性要低得多,并且可溶于有机溶剂或水中(取决于末端基团的性质)。这些多价催化剂促进了高效的点击化学反应,并发挥了类似于酶活性的正树枝状效应。我们提出了一种单核 CuAAC 点击反应机制。尽管点击化学与树枝状聚合物的主要用途是用大量分子对其进行修饰,以用于医学或材料目的,但我们特别感兴趣的是形成能够通过氮原子与过渡金属离子配位的树枝状内[1,2,3]-三唑杂环。我们描述了一些应用,包括阴离子和阳离子的分子识别以及根据 Crooks 用聚(酰胺-胺)(PAMAM)树枝状聚合物开创的原理稳定过渡金属纳米粒子,特别是控制结构和反应性参数,其中树枝状内[1,2,3]-三唑和外围三脚架三(乙二醇)末端在点击树枝状聚合物介导的金纳米粒子(AuNPs)合成和稳定中发挥关键作用。通过改变这些参数,我们稳定了尺寸在 1.8 至 50nm 之间的水溶性、弱配位的 AuNPs,并表明 AuNPs 和 PdNPs 之间的行为存在很大差异。总的来说,新的催化剂设计和点击树枝状聚合物化学的可能性为多种应用架起了树枝状结构和纳米材料世界之间的桥梁。

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