用于高效固定床催化剂的分层多孔铜基金属有机框架结构的三维打印技术

Ruizhe Xing*, Renliang Huang*, Rongxin Su, Jie Kong, Michael D. Dickey* and Wei Qi, 
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摘要

具有跨越几个数量级的分层开放孔隙的金属结构是各种催化剂应用的理想候选材料。然而,使用合金/脱合金方法制备的多孔金属材料仍难以在广泛的尺寸范围内实现连续的孔隙分布。在此,我们报告了一种可打印的铜(Cu)/铁(Fe)复合油墨,它能制备出孔隙跨度超过 4 个数量级的分层多孔铜材料。制造过程包括四个步骤:三维打印、退火、脱合金和再退火。由于采用了独特的退火工艺,产生的分层孔隙表面镀上了一层铜铁合金。这一特点赋予了固定床反应器在 4-硝基苯酚(4-NP)还原和 Friedländer 环化过程中卓越的催化能力和多功能性。具体而言,在 4-NP 还原反应中,多孔铜催化剂表现出优异的反应速率常数(kapp = 86.5 × 10-3 s-1)和对底物的广泛适应性(高达 1.26 mM);而在弗里德兰德环化反应中,金属有机框架装饰多孔铜催化剂可在仅 20 分钟的停留时间内实现 95% 以上的转化率。利用双金属颗粒作为可印刷油墨,为制造应用于先进固定床催化剂等领域的分层多孔金属结构提供了宝贵的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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3D-Printing of Hierarchical Porous Copper-Based Metal–Organic-Framework Structures for Efficient Fixed-Bed Catalysts

Metallic structures with hierarchical open pores that span several orders of magnitude are ideal candidates for various catalyst applications. However, porous metal materials prepared using alloy/dealloy methods still struggle to achieve continuous pore distribution across a broad size range. Herein, we report a printable copper (Cu)/iron (Fe) composite ink that produces a hierarchical porous Cu material with pores spanning over 4 orders of magnitude. The manufacturing process involves four steps: 3D-printing, annealing, dealloying, and reannealing. Because of the unique annealing process, the resulting hierarchical pore surface becomes coated with a layer of Cu–Fe alloy. This feature imparts remarkable catalytic ability and versatile functionality within fixed bed reactors for 4-nitrophenol (4-NP) reduction and Friedländer cyclization. Specifically, for 4-NP reduction, the porous Cu catalyst demonstrates an excellent reaction rate constant (kapp = 86.5 × 10–3 s–1) and a wide adaptability of the substrate (up to 1.26 mM), whilst for Friedländer cyclization, a conversion over 95% within a retention time of only 20 min can be achieved by metal–organic-framework-decorated porous Cu catalyst. The utilization of dual metallic particles as printable inks offers valuable insights for fabricating hierarchical porous metallic structures for applications, such as advanced fixed-bed catalysts.

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