Physicochemical Methods for the Structuring and Assembly of MOF Crystals.

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Accounts of Chemical Research Pub Date : 2024-08-06 Epub Date: 2024-07-26 DOI:10.1021/acs.accounts.4c00250
Tolga Zorlu, Daniel Hetey, Michael R Reithofer, Jia Min Chin
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Abstract

ConspectusMetal-organic frameworks (MOFs) are promising for various applications through the creation of innovative materials and assemblies. This potential stems from their modular nature, as diverse metal ions and organic linkers can be combined to produce MOFs with unique chemical properties and lattice structures. Following extensive research on the design and postsynthetic chemical modification of MOF lattices at the molecular level, increasing attention is now focused on the next hierarchical level: controlling the morphology of MOF crystals and their subsequent assembly and positioning to create functional composites.Beyond well-established methods to regulate crystal size and shape through nucleation and coordination modulation, physicochemical techniques leveraging wetting effects, interparticle interactions, and magnetic or electric fields offer attractive avenues for the hierarchical structuring and assembly of MOFs. These techniques facilitate crystal alignment and yield unique superstructures. While our research group primarily focuses on directing MOF crystal orientation and positioning using external stimuli such as magnetic and electric fields, we also explore hierarchical MOF synthesis and structuring using liquid interfaces and depletion force-assisted packing.This account highlights our journey and progress in developing methods to regulate the morphology, assembly, orientation, and positioning of MOF crystals, placed in the context of work by other groups. First, we examine commonly utilized structuring methods for MOF crystals that employ liquid-liquid and air-liquid interfaces to spatially confine reactions, allowing us to access unique morphologies such as mushroom-like crystals and Janus particles. We also discuss strategies for concentrating and packing MOF crystals into superstructures, utilizing fluid interfaces for spatial confinement of crystals, depletion forces, entropic effects, and crystal sedimentation.A particularly compelling challenge in expanding the applicability of MOF materials is how to manipulate free-standing MOF crystals. This issue is especially important because MOFs are typically produced as loose powders, and industrial material processing is generally more efficient when the material is fluidized. While extensive research has been conducted regarding MOF growth on substrates with both positional and orientational control, there is a clear need for similar precision with free-standing MOFs dispersed in a fluid matrix. Our group has thus focused on the relatively new, yet powerful approach of using electric and magnetic fields to manipulate MOF crystals, which offers unprecedented control over the orientation and positioning of dispersed MOF crystals, complementing the more well-established methods of MOF growth on substrates. In this Account, we provide foundational background and discussions on the interactions between these external fields and MOF crystals, including critical considerations for effective MOF manipulation using such techniques. We also discuss their unique advantages and applications, and briefly examine potential application areas, such as photonics, smart materials like soft robotics and absorbents, and sensing. This Account highlights the promising potential of well-organized and aligned MOF crystals over randomly oriented ones in various applications, owing to enhanced selectivity and performance. It underscores the importance of specialized assembly methods to advance materials science and engineering, encouraging the reader to explore such approaches.

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构建和组装 MOF 晶体的物理化学方法。
Conspectus 金属有机框架(MOFs)通过创造创新材料和组合体,在各种应用领域大有可为。这种潜力源于它们的模块化性质,因为不同的金属离子和有机连接体可以组合成具有独特化学性质和晶格结构的 MOFs。除了通过成核和配位调节晶体大小和形状的成熟方法外,利用润湿效应、粒子间相互作用以及磁场或电场的物理化学技术也为 MOF 的分层结构和组装提供了极具吸引力的途径。这些技术可促进晶体排列并产生独特的超结构。我们的研究小组主要关注利用磁场和电场等外部刺激引导 MOF 晶体的定向和定位,同时我们也探索利用液体界面和耗竭力辅助填料进行分层 MOF 合成和结构化。首先,我们研究了常用的 MOF 晶体构造方法,这些方法利用液-液和气-液界面对反应进行空间限制,使我们能够获得独特的形态,如蘑菇状晶体和 Janus 颗粒。我们还讨论了将 MOF 晶体浓缩和堆积成超结构的策略、利用流体界面对晶体进行空间限制、耗竭力、熵效应和晶体沉积。这个问题尤为重要,因为 MOF 通常是以松散粉末的形式生产的,而工业材料加工通常在材料流化时效率更高。虽然人们已经对 MOF 在基底上的生长进行了大量的位置和方向控制研究,但对于分散在流体基质中的独立 MOF,显然也需要类似的精确度。因此,我们的研究小组将重点放在利用电场和磁场操纵 MOF 晶体这种相对较新但功能强大的方法上,这种方法对分散的 MOF 晶体的取向和定位提供了前所未有的控制,是对在基底上生长 MOF 的成熟方法的补充。在本开户绑定手机领体验金中,我们将介绍这些外部磁场与 MOF 晶体之间相互作用的基本背景并展开讨论,包括使用此类技术有效操纵 MOF 的关键注意事项。我们还讨论了它们的独特优势和应用,并简要研究了潜在的应用领域,如光子学、软机器人和吸附剂等智能材料以及传感。由于选择性和性能得到了提高,本专著强调了组织良好、排列整齐的 MOF 晶体在各种应用中比随机取向的晶体具有更大的潜力。它强调了专业组装方法对推动材料科学与工程的重要性,鼓励读者探索此类方法。
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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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