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用于液态烃吸附分离的柔性金属有机框架材料。

Flexible Metal-Organic Frameworks for Adsorptive Separation of Liquid Hydrocarbons.

作者信息

Xie Feng, Wang Hao, Li Jing

机构信息

Department of Chemistry and Chemical Biology, Rutgers University, 123 Bevier Road, Piscataway, New Jersey 08854, United States.

Hoffmann Institute of Advanced Materials, Shenzhen Polytechnic University, 7098 Liuxian Boulevard, Shenzhen 518055, P. R. China.

出版信息

Acc Chem Res. 2025 Jul 1;58(13):2016-2027. doi: 10.1021/acs.accounts.5c00217. Epub 2025 Jun 9.

Abstract

ConspectusThe separation and purification of liquid hydrocarbons are vital for producing various petrochemical feedstocks. However, the structural and chemical similarities among these hydrocarbons make conventional separation methods such as distillation and extraction both challenging and energy intensive. Adsorptive separation using porous solid adsorbents presents a promising and energy-efficient alternative. Among these, flexible metal-organic frameworks (FMOFs) as a subgroup of MOFs have emerged as an unparalleled class of porous materials for highly selective adsorption-based separation and purification of liquid hydrocarbons. Having intrinsically dynamic structures, FMOFs exhibit very different adsorption behaviors compared to rigid MOFs (RMOFs), those that do not involve structure transformations upon activation, and molecular adsorption.In recent years, we have focused on developing high-performance FMOFs with different dimensionalities, spanning from one-dimensional (1D) chains to two-dimensional (2D) layers and to three-dimensional (3D) networks. Their structural flexibility arises from either local rotation and vibration of organic linkers or global structural changes, enabling stimuli-responsive molecular adsorption. By leveraging their distinct temperature- and adsorbate-dependent adsorption behaviors, we have achieved highly efficient separation of numerous important liquid hydrocarbons through molecular sieving, the mechanism that offers the highest selectivity. The unique dynamic structures and adsorption properties allow FMOFs to have high adsorption capacity, exceptional selectivity, and fast kinetics simultaneously, overcoming the trade-offs typically encountered by conventional adsorbents including RMOFs.In this , we summarize our recent advances using FMOFs for the adsorptive separations of three key groups of liquid hydrocarbons: C6 alkane isomers, C8 alkylaromatic isomers, and C6 cyclic hydrocarbons. We highlight the interplay between FMOF structures and sorbate properties, focusing on their unique temperature- and adsorbate-dependent adsorption behaviors and molecular sieving mechanism responsible for high selectivity. We also discuss their inverse size-selective adsorption phenomena stemmed from adsorbate-induced structural transformations─a phenomena not possible in conventional RMOFs, which typically exhibit size-exclusion selectivity. Representative FMOFs with superior separation performance are discussed, along with their underlying working principles. Finally, we address the existing challenges and propose potential strategies to enhance their performance aiming for applications in petrochemical industry. Overall, our studies not only unveil a new dimension of flexible porous crystals but also provide a strategic framework for their design and implementation in highly selective, sieving-based molecular separation. By deepening the understanding of structure-property relationships, our findings offer valuable insights that can inspire future advancements in adsorptive separation technologies, with significant implications for the petrochemical industry and beyond.

摘要

综述

液态烃的分离和提纯对于生产各种石化原料至关重要。然而,这些烃类在结构和化学性质上的相似性使得诸如蒸馏和萃取等传统分离方法既具有挑战性又能耗巨大。使用多孔固体吸附剂的吸附分离提供了一种有前景且节能的替代方案。其中,柔性金属有机框架(FMOF)作为金属有机框架(MOF)的一个子类别,已成为一类无与伦比的多孔材料,用于基于吸附的液态烃的高选择性分离和提纯。FMOF具有内在的动态结构,与刚性MOF(RMOF,即活化时不涉及结构转变的MOF)和分子吸附相比,表现出非常不同的吸附行为。

近年来,我们专注于开发具有不同维度的高性能FMOF,从一维(1D)链到二维(2D)层再到三维(3D)网络。它们的结构灵活性源于有机连接体的局部旋转和振动或整体结构变化,从而实现刺激响应性分子吸附。通过利用它们独特的温度和吸附质依赖性吸附行为,我们通过分子筛作用实现了多种重要液态烃的高效分离,分子筛作用是提供最高选择性的机制。独特的动态结构和吸附性能使FMOF能够同时具有高吸附容量、卓越的选择性和快速的动力学,克服了包括RMOF在内的传统吸附剂通常面临的权衡。

在本文中,我们总结了我们最近使用FMOF对三类关键液态烃进行吸附分离的进展:C6烷烃异构体、C8烷基芳烃异构体和C6环烃。我们强调FMOF结构与吸附质性质之间的相互作用,重点关注它们独特的温度和吸附质依赖性吸附行为以及负责高选择性的分子筛机制。我们还讨论了源自吸附质诱导结构转变的反尺寸选择性吸附现象——这是传统RMOF中不可能出现的现象,传统RMOF通常表现出尺寸排阻选择性。讨论了具有优异分离性能的代表性FMOF及其潜在工作原理。最后,我们阐述了现有的挑战并提出了提高其性能的潜在策略,旨在用于石化行业。总体而言,我们的研究不仅揭示了柔性多孔晶体的一个新维度,还为其在高选择性、基于筛分的分子分离中的设计和应用提供了一个战略框架。通过深化对结构 - 性能关系的理解,我们的发现提供了有价值的见解,可激发吸附分离技术的未来进展,对石化行业及其他领域具有重要意义。

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