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使用多相氢化催化剂对商用及报废聚氨酯进行催化解构

Catalytic Deconstruction of Commercial and End-Of-Life Polyurethane with Heterogeneous Hydrogenation Catalyst.

作者信息

An Wenqing, Liu Xin, Zhang Xiaodong, Gao Ruitong, Chen Zhaojun, Hou Yuandong, Du Hui

机构信息

College of Chemistry and Chemical Engineering, Qingdao University, Qingdao, 266071, Shandong, P.R. China.

College of Materials Science and Engineering, Qingdao University, Qingdao, 266071, Shandong, P.R. China.

出版信息

ChemSusChem. 2025 May 5;18(9):e202402321. doi: 10.1002/cssc.202402321. Epub 2025 Jan 16.

Abstract

Polyurethane (PU), as a thermoset polymer, is extensively utilized in various applications, such as refrigerator foams, sponges, elastomers, shoes, etc. However, the recycling of post-consumed PU poses significant challenges due to its intricate and extensive crosslinking structures. Catalytic hydrogenation is one of the most effective methods for recycling PU waste, nevertheless, there is currently a lack for a hydrogenation catalyst that is both high-performing, recyclable, and cost-effective for breaking down post-consumed PU materials. In this work, model PU and commercial PU were efficiently hydrodegraded into aromatic amines and polyol fractions by using a commercial NiMo/AlO catalyst. Notably, the results indicated that PU waste can be efficiently degraded at a pressure of 5 MPa and at a temperature of 185 °C and yielding a significant amount of a valuable chemical monomers. With the assistance of hydrogenation catalyst, the C-N and C-O bonds with low energy barriers inside the polymer are cracked and the polymer hydrogenation process becomes feasible. This study demonstrates the capability of fluidized bed hydrogenation process, employing recyclable heterogeneous catalysts for the recycling of PU waste.

摘要

聚氨酯(PU)作为一种热固性聚合物,广泛应用于各种领域,如冰箱泡沫、海绵、弹性体、鞋子等。然而,由于其复杂且广泛的交联结构,消费后聚氨酯的回收面临重大挑战。催化加氢是回收聚氨酯废料最有效的方法之一,然而,目前缺乏一种高性能、可回收且经济高效的加氢催化剂来分解消费后的聚氨酯材料。在这项工作中,使用商业NiMo/AlO催化剂将模型PU和商业PU有效地加氢降解为芳香胺和多元醇馏分。值得注意的是,结果表明,聚氨酯废料在5 MPa的压力和185 °C的温度下可以有效地降解,并产生大量有价值的化学单体。在加氢催化剂的作用下,聚合物内部具有低能垒的C-N键和C-O键被裂解,聚合物加氢过程变得可行。本研究展示了流化床加氢工艺利用可回收多相催化剂回收聚氨酯废料的能力。

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