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CuAAC“点击”化学在索烃和轮烷合成中的应用。

The application of CuAAC 'click' chemistry to catenane and rotaxane synthesis.

机构信息

School of Chemistry, University of Edinburgh, The King's Buildings, West Mains Road, Edinburgh, UK EH9 3JJ.

出版信息

Chem Soc Rev. 2010 Apr;39(4):1240-51. doi: 10.1039/b901974j. Epub 2009 Nov 16.

Abstract

The copper(I)-catalysed azide-alkyne cycloaddition (the CuAAC 'click' reaction) is proving to be a powerful new tool for the construction of mechanically interlocked molecular-level architectures. The reaction is highly selective for the functional groups involved (terminal alkynes and azides) and the experimental conditions are mild and compatible with the weak and reversible intermolecular interactions generally used to template the assembly of interlocked structures. Since the CuAAC reaction was introduced as a means of making rotaxanes by an 'active template' mechanism in 2006, it has proven effective for the synthesis of numerous different types of rotaxanes, catenanes and molecular shuttles by passive as well as active template strategies. Mechanistic insights into the CuAAC reaction itself have been provided by unexpected results encountered during the preparation of rotaxanes. In this tutorial review we highlight the rapidly increasing utility and future potential of the CuAAC reaction in mechanically interlocked molecule synthesis.

摘要

铜(I)催化的叠氮化物-炔烃环加成反应(CuAAC“点击”反应)被证明是构建机械互锁分子水平结构的强大新工具。该反应对涉及的官能团(末端炔烃和叠氮化物)具有高度选择性,实验条件温和且与弱可逆的分子间相互作用相容,这些相互作用通常用于模板互锁结构的组装。自 2006 年 CuAAC 反应被引入作为通过“主动模板”机制制造轮烷的一种方法以来,它已被证明对于通过被动和主动模板策略合成许多不同类型的轮烷、索烃和分子梭有效。在制备轮烷时遇到的意外结果为 CuAAC 反应本身提供了对其反应机制的深入了解。在本教程综述中,我们强调了 CuAAC 反应在机械互锁分子合成中的快速增长的实用性和未来潜力。

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