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氨基酸功能化碳纳米材料的合成及应用。

Synthesis and applications of amino-functionalized carbon nanomaterials.

机构信息

Department of Chemical and Pharmaceutical Sciences, CENMAT, Center of Excellence for Nanostructured Materials, INSTM UdR, Trieste, University of Trieste, Via Licio Giorgieri 1, Trieste 34127, Italy.

出版信息

Chem Commun (Camb). 2020 Oct 22;56(84):12698-12716. doi: 10.1039/d0cc05316c.

Abstract

Carbon-based nanomaterials (CNMs) have attracted considerable attention in the scientific community both from a scientific and an industrial point of view. Fullerenes, carbon nanotubes (CNTs), graphene and carbon dots (CDs) are the most popular forms and continue to be widely studied. However, the general poor solubility of many of these materials in most common solvents and their strong tendency to aggregate remains a major obstacle in practical applications. To solve these problems, organic chemistry offers formidable help, through the exploitation of tailored approaches, especially when aiming at the integration of nanostructures in biological systems. According to our experience with carbon-based nanostructures, the introduction of amino groups is one of the best trade-offs for the preparation of functionalized nanomaterials. Indeed, amino groups are well-known for enhancing the dispersion, solubilization, and processability of materials, in particular of CNMs. Amino groups are characterized by basicity, nucleophilicity, and formation of hydrogen or halogen bonding. All these features unlock new strategies for the interaction between nanomaterials and other molecules. This integration can occur either through covalent bonds (e.g., via amide coupling) or in a supramolecular fashion. In the present Feature Article, the attention will be focused through selected examples of our approach to the synthetic pathways necessary for the introduction of amino groups in CNMs and the subsequent preparation of highly engineered ad hoc nanostructures for practical applications.

摘要

碳基纳米材料(CNMs)在科学和工业方面都引起了科学界的极大关注。富勒烯、碳纳米管(CNTs)、石墨烯和碳点(CDs)是最受欢迎的形式,并且仍在广泛研究中。然而,许多这些材料在大多数常见溶剂中的一般较差的溶解度和它们强烈的聚集倾向仍然是实际应用中的主要障碍。为了解决这些问题,有机化学提供了强大的帮助,通过开发定制的方法,特别是当目标是将纳米结构集成到生物系统中时。根据我们对碳基纳米结构的经验,引入氨基是制备功能化纳米材料的最佳权衡之一。事实上,氨基以增强材料,特别是碳纳米材料的分散性、溶解性和可加工性而闻名。氨基具有碱性、亲核性和形成氢键或卤键的特性。所有这些特性都为纳米材料与其他分子之间的相互作用解锁了新的策略。这种集成可以通过共价键(例如,通过酰胺偶联)或超分子方式发生。在本专题文章中,将通过我们的方法的一些例子来关注在 CNMs 中引入氨基和随后制备用于实际应用的高度工程化的特定纳米结构的合成途径。

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