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雷尼镍上 5-羟甲基糠醛一步还原胺化为 2,5-双(氨甲基)呋喃。

One-Step Reductive Amination of 5-Hydroxymethylfurfural into 2,5-Bis(aminomethyl)furan over Raney Ni.

机构信息

Key Laboratory of Biomass Chemical Engineering of the Ministry of Education, College of Chemical and Biological Engineering, Zhejiang University, 38 Zheda Road, Xihu District, Hangzhou, 310027, P.R. China.

Institute of Zhejiang University-Quzhou, 78 Jinhua Boulevard North, Quzhou, 324000, P.R. China.

出版信息

ChemSusChem. 2021 Jun 8;14(11):2308-2312. doi: 10.1002/cssc.202100564. Epub 2021 May 7.

Abstract

Simultaneous reductive amination of C=O and C-OH in 5-hydroxymethylfurfural (HMF) into C-NH in 2,5-bis(aminomethyl)furan (BAMF) is challenging. In this work, reductive amination of C=O in HMF was firstly studied, in which HMF can be converted into 5-hydroxymethyl furfurylamine (HMFA) with a 99.5 % yield over Raney Co catalyst. BAMF was then directly synthesized with 82.3 % yield from HMF over Raney Ni catalyst at 160 °C for 12 h. An even higher yield of 88.3 % could be obtained through a stepwise reductive amination process, in which the reaction started at 120 °C for the first 2 h over Raney Co mainly for amination of C=O and then continued at 160 °C for another 10 h over Raney Ni mainly for amination of C-OH. Under optimized reaction conditions, the catalyst could be reused four times without obvious loss in catalytic performance. XRD and XPS characterization of the reused catalyst indicated that the formation of Ni N and the adsorption of alkyl amines could be the main reasons for the deactivation of the catalyst. Moreover, plausible reaction pathways were proposed to originate the detected by-products according to the kinetic profiles.

摘要

同时还原胺化 C=O 和 C-OH 在 5-羟甲基糠醛 (HMF) 中生成 C-NH 在 2,5-双(氨甲基)呋喃 (BAMF) 中具有挑战性。在这项工作中,首先研究了 HMF 中 C=O 的还原胺化,其中 HMF 在雷尼 Co 催化剂上可以转化为 99.5%的 5-羟甲基糠醛胺 (HMFA)。然后,在 160°C 下通过雷尼 Ni 催化剂反应 12 小时,HMF 可直接合成 82.3%的 BAMF。通过分步还原胺化过程可以获得更高的产率 88.3%,其中反应在 120°C 下进行前 2 小时,主要进行 C=O 的胺化,然后在 160°C 下继续进行 10 小时,主要进行 C-OH 的胺化。在优化的反应条件下,催化剂可以重复使用四次而催化性能没有明显损失。XRD 和 XPS 对再催化剂的表征表明,Ni N 的形成和烷基胺的吸附可能是催化剂失活的主要原因。此外,根据动力学谱图提出了可能的反应途径来产生检测到的副产物。

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