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Exploiting the 1,2,3-triazolium motif in anion-templated formation of a bromide-selective rotaxane host assembly

机译:在溴化物选择性轮烷主体组装体的阴离子模板形成中利用1,2,3-三唑鎓基序

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摘要

Stimulated by the efficacy of copper (I) catalysed Huisgen-type 1,3-dipolar cycloaddition of terminal alkynes and organic azides to generate 1,4-disubstituted 1,2,3-triazole derivatives, the importance of ‘click’ chemistry in the synthesis of organic and biological molecular systems is ever increasing.[1] The mild reaction conditions have also led to this reaction gaining favour in the construction of interlocked molecular architectures.[2-4] In the majority of cases however, the triazole group simply serves as a covalent linkage with no function in the resulting organic molecular framework. More recently a renewed interest has been shown in the transition metal coordination chemistry of triazole ligands.[3, 5, 6] In addition novel aryl macrocyclic and acyclic triazole based oligomers have been shown to recognise halide anions via cooperative triazole C5-H….anion hydrogen bonds.[7] In light of this it is surprising the potential anion binding affinity of the positively charged triazolium motif has not, with one notable exception,[8] been investigated. With the objective of manipulating the unique topological cavities of mechanically bonded molecules for anion recognition purposes, we have developed general methods of using anions to template the formation of interpenetrated and interlocked structures.[9-13] Herein we report the first examples of exploiting the 1,2,3-triazolium group in the anion templated formation of pseudorotaxane and rotaxane assemblies. In an unprecedented discovery the bromide anion is shown to be a superior templating reagent to chloride in the synthesis of a novel triazolium axle containing [2]rotaxane. Furthermore the resulting rotaxane interlocked host system exhibits the rare selectivity preference for bromide over chloride...
机译:受铜(I)催化末端炔烃和有机叠氮化物的Huisgen型1,3-偶极环加成反应生成1,4-二取代1,2,3-三唑衍生物的功效的激发,“点击”化学的重要性有机和生物分子系统的合成正在不断增加。[1]温和的反应条件也使该反应在互锁分子结构的构建中获得了好评。[2-4]但是,在大多数情况下,三唑基仅充当共价键,在所得有机分子框架中不起作用。最近,人们对三唑配体的过渡金属配位化学表现出了新的兴趣。[3、5、6]此外,新型基于芳基大环和无环三唑的低聚物已显示出可通过协同三唑C5-H…识别卤化物阴离子。阴离子氢键。[7]鉴于此,令人惊讶的是,除了一个显着的例外,没有研究带正电的三唑鎓基序的潜在的阴离子结合亲和力[8]。为了操纵用于阴离子识别目的的机械键合分子的独特拓扑腔,我们开发了使用阴离子对互穿和互锁结构的形成进行模板化的一般方法。[9-13]在此,我们报告了利用这种结构的第一个实例。 1,2,3-三唑鎓基团在阴离子模板中形成假轮烷和轮烷组装体。在空前的发现中,溴化物阴离子被证明是氯酸的优良模板剂,可用于合成新型含[2]轮烷的三唑鎓轴。此外,所得轮烷互锁的宿主系统对溴化物的选择性优于对氯离子的选择性。

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