Sharma Ravi, Uyttersprot Shiara, Baron Gino V, Denayer Joeri F M
Chemical Engineering Department, Vrije Universiteit Brussel, Brussels B-1050, Belgium.
ACS Appl Mater Interfaces. 2025 May 28;17(21):30943-30953. doi: 10.1021/acsami.5c04227. Epub 2025 May 15.
The use of structured adsorbents is emerging as a promising approach for adsorptive separation processes, and several ex situ structuring routes like extrusion, three-dimensional (3D) printing, and coating over substrates have been extensively investigated. However, in situ growth of adsorbents such as metal-organic frameworks (MOFs) on metal laminates remains underexplored. This study introduces a novel laminate system, where aluminum pieces, inspired by the "LEGO" concept, were designed through CNC milling and used to fabricate embossed/dented copper laminates. These laminates were then coated with ZIF-8 crystals (ZIF-8@Cu) via a direct in situ coating method at room temperature, resulting in a 100 μm coating. The system was assembled, packed in a custom-designed column, and evaluated for alcohol recovery from methanol/water and -butanol/water mixtures. The ZIF-8@Cu laminates exhibited high adsorption capacities: 0.19 g/g, 0.26 g/g, and excellent selectivity toward alcohols (α = 8.5; α = 68). Vapor-phase experiments showed dispersive effects in the elution curve, attributed to the intrinsic properties of ZIF-8 (S-shaped equilibrium isotherm) and mass transfer limitation caused by channel nonuniformities and inlet flow maldistribution. For both separation mixtures, the laminate system was regenerated within 2 h via thermal swing adsorption (TSA), thereby exhibiting the combined benefits of microporosity, low-pressure drop, mechanical stability, and efficient heat transfer. The adsorptive properties were further highlighted in liquid-phase separation, where the laminates selectively captured -butanol from 2.0 wt % aqueous solution and were successfully regenerated via TSA. This study provides proof of concept for the application of MOF-coated metal laminates in multiple adsorption-desorption cycles, thus highlighting their potential for process intensification.
结构化吸附剂的应用正成为吸附分离过程中一种很有前景的方法,并且几种非原位结构化途径,如挤压成型、三维(3D)打印以及在基材上涂层等,已经得到了广泛研究。然而,金属有机框架(MOF)等吸附剂在金属层压板上的原位生长仍未得到充分探索。本研究引入了一种新型层压系统,其中受“乐高”概念启发的铝片通过计算机数控铣削设计而成,并用于制造有压纹/凹痕的铜层压板。然后通过室温下的直接原位涂覆方法,在这些层压板上涂覆ZIF-8晶体(ZIF-8@Cu),得到了100μm的涂层。该系统组装后,装入定制设计的柱中,并对甲醇/水和丁醇/水混合物中的酒精回收进行评估。ZIF-8@Cu层压板表现出高吸附容量:分别为0.19 g/g、0.26 g/g,并且对醇类具有优异的选择性(α = 8.5;α = 68)。气相实验表明洗脱曲线中存在分散效应,这归因于ZIF-8的固有特性(S形平衡等温线)以及通道不均匀性和入口流动分布不均导致的传质限制。对于这两种分离混合物,层压系统通过变温吸附(TSA)在2小时内实现再生,从而展现出微孔性、低压降、机械稳定性和高效传热的综合优势。在液相分离中,吸附性能进一步凸显,层压板从2.0 wt%的水溶液中选择性捕获丁醇,并通过TSA成功再生。本研究为MOF涂层金属层压板在多个吸附 - 解吸循环中的应用提供了概念验证,从而突出了它们在过程强化方面的潜力。