Suppr超能文献

网状纳米科学:自下而上的组装纳米技术。

Reticular Nanoscience: Bottom-Up Assembly Nanotechnology.

机构信息

Basque Center for Materials, UPV/EHU Science Park, Leioa, 48940, Spain.

School of Chemistry, University of St. Andrews, St. Andrews, KY16 9ST, United Kingdom.

出版信息

J Am Chem Soc. 2022 May 4;144(17):7531-7550. doi: 10.1021/jacs.1c11507. Epub 2022 Apr 7.

Abstract

The chemistry of metal-organic and covalent organic frameworks (MOFs and COFs) is perhaps the most diverse and inclusive among the chemical sciences, and yet it can be radically expanded by blending it with nanotechnology. The result is reticular nanoscience, an area of reticular chemistry that has an immense potential in virtually any technological field. In this perspective, we explore the extension of such an interdisciplinary reach by surveying the explored and unexplored possibilities that framework nanoparticles can offer. We localize these unique nanosized reticular materials at the juncture between the molecular and the macroscopic worlds, and describe the resulting synthetic and analytical chemistry, which is fundamentally different from conventional frameworks. Such differences are mirrored in the properties that reticular nanoparticles exhibit, which we described while referring to the present state-of-the-art and future promising applications in medicine, catalysis, energy-related applications, and sensors. Finally, the bottom-up approach of reticular nanoscience, inspired by nature, is brought to its full extension by introducing the concept of augmented reticular chemistry. Its approach departs from a single-particle scale to reach higher mesoscopic and even macroscopic dimensions, where framework nanoparticles become building units themselves and the resulting supermaterials approach new levels of sophistication of structures and properties.

摘要

金属-有机和共价有机框架(MOFs 和 COFs)的化学可能是化学科学中最多样化和包容性的,但通过与纳米技术融合,它可以得到彻底扩展。其结果是网状纳米科学,这是网状化学的一个领域,在几乎任何技术领域都具有巨大的潜力。在本观点中,我们通过调查框架纳米粒子可以提供的已探索和未探索的可能性,来探索这种跨学科扩展的可能性。我们将这些独特的纳米尺寸网状材料定位在分子和宏观世界的交界处,并描述由此产生的合成和分析化学,这与传统框架从根本上不同。这种差异反映在网状纳米粒子所表现出的特性上,我们在提到医学、催化、能源相关应用和传感器领域的现有最新技术和未来有前景的应用时,对这些特性进行了描述。最后,通过引入增强型网状化学的概念,受自然启发的网状纳米科学的自下而上方法得到了充分扩展。它的方法从单个颗粒尺度扩展到更高的介观甚至宏观尺度,在那里框架纳米粒子本身成为构建单元,而由此产生的超材料则在结构和性能方面达到了新的复杂水平。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验