The art of controlled nanoscale lattices: A review on the self-assembly of colloidal metal–organic framework particles and their multifaceted architectures

IF 31.6 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Science and Engineering: R: Reports Pub Date : 2024-02-22 DOI:10.1016/j.mser.2024.100785
Abdelkarim Chaouiki , Maryam Chafiq , Young Gun Ko
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Abstract

Nanoscale lattices formed through the art of controlled self-assembly hold a promise for the creation of advanced materials with diverse applications. These versatile particles, boasting exceptional attributes such as colloidal stability, tunable sizes, and an array of sophisticated shapes, allow access to a vast multifunctionality. In this context, the controlled self-assembly of colloidal metal-organic framework (MOF) particles is a promising field that encourage scientists to continue exploring across the limits of what is possible. A thorough investigation of this new field of study reveals the possibility of influencing a future in which innovation and creativity converge to produce a wide range of applications. In this review, we present a comprehensive overview of the self-assembly of colloidal MOF (CMOF) particles into ordered superstructures, with a focus on the underlying principles governing the self-assembly of CMOF, design and synthetic strategies, as well as their self-assembly mechanisms. In addition, the stability of CMOF particles is highlighted, emphasizing efforts and strategies to ensure their reliability. Finally, we offer some insights and perspectives for the future development and the potential application of CMOF, reflecting the great potential and rapid development of this interdisciplinary research field. We aim to provide new insights into MOF particle self-assembly and further guide future research for large-scale applications.

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可控纳米级晶格的艺术:胶体金属有机框架颗粒的自组装及其多元结构综述
通过受控自组装技术形成的纳米级晶格有望创造出用途广泛的先进材料。这些多用途颗粒具有胶体稳定性、可调尺寸和各种复杂形状等优异特性,可实现广泛的多功能性。在此背景下,胶体金属有机框架(MOF)颗粒的受控自组装是一个前景广阔的领域,鼓励科学家继续探索可能的极限。对这一新研究领域的深入研究揭示了影响未来的可能性,在未来,创新和创造力将汇聚在一起,产生广泛的应用。在这篇综述中,我们全面综述了胶体 MOF(CMOF)颗粒自组装成有序超结构的过程,重点介绍了 CMOF 自组装的基本原理、设计和合成策略及其自组装机制。此外,我们还重点介绍了 CMOF 粒子的稳定性,强调了确保其可靠性的努力和策略。最后,我们对 CMOF 的未来发展和潜在应用提出了一些见解和展望,反映了这一跨学科研究领域的巨大潜力和快速发展。我们旨在为 MOF 粒子的自组装提供新的见解,并进一步指导未来的大规模应用研究。
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来源期刊
Materials Science and Engineering: R: Reports
Materials Science and Engineering: R: Reports 工程技术-材料科学:综合
CiteScore
60.50
自引率
0.30%
发文量
19
审稿时长
34 days
期刊介绍: Materials Science & Engineering R: Reports is a journal that covers a wide range of topics in the field of materials science and engineering. It publishes both experimental and theoretical research papers, providing background information and critical assessments on various topics. The journal aims to publish high-quality and novel research papers and reviews. The subject areas covered by the journal include Materials Science (General), Electronic Materials, Optical Materials, and Magnetic Materials. In addition to regular issues, the journal also publishes special issues on key themes in the field of materials science, including Energy Materials, Materials for Health, Materials Discovery, Innovation for High Value Manufacturing, and Sustainable Materials development.
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