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具有低木质素含量的金钯纳米合金的特殊磁性催化剂

Special Magnetic Catalyst with Lignin-Reduced Au-Pd Nanoalloy.

作者信息

Han Guocheng, Li Xiaoyun, Li Jiaming, Wang Xiaoying, Zhang Yu Shrike, Sun Runcang

机构信息

State Key Laboratory of Pulp and Paper Engineering, South China University of Technology, Guangzhou 510640, China.

Division of Biomedical Engineering, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston 02139, United States.

出版信息

ACS Omega. 2017 Aug 24;2(8):4938-4945. doi: 10.1021/acsomega.7b00830. eCollection 2017 Aug 31.

Abstract

This study describes a new strategy to fabricate a special magnetic catalyst via facile coating Au-Pd nanoalloy catalysts onto a commercial magnetic stirring bar, without the incorporation of iron element. First, the abundant natural "waste" lignin was utilized as the reducing and stabilizing agent to prepare Au-Pd nanoalloys in a green manner. The Au-Pd nanoalloys were assumed to have a core-shell structure with an Au-rich core and a Pd-rich shell. The Au-Pd nanoalloys could be well dispersed in aqueous medium due to the stabilizing effect of lignin and be conveniently coated onto the surface of a commercial stirring bar. The AuPd nanoalloy catalyst exhibited excellent catalytic activities in the reduction of 4-nitrophenol to 4-amnophenol by NaBH, with a rate constant () of 0.239 min, which was higher than that of AuPd and AuPd nanoalloys and 4 times higher than that of a single-component Au or Pd nanoparticles. Besides, the catalytic ability of Au-Pd nanoalloy catalyst could be maintained even after seven cycles of catalysis. The catalytic rate constant was found to be positively correlated to the stirring speed of the bar. The scanning electron microscopy analysis revealed ravines and pores on the surface of lignin-nanoalloys composites, implying the possible mechanism of the catalytic activities. This study not only proved the feasibility of lignin for green synthesis of Au-Pd nanoalloys but also proposed a facile and innovated strategy for the future production of solid/liquid catalytic platforms where the developed method could be used to coat any surface interfacing the reagents.

摘要

本研究描述了一种新策略,即通过将金-钯纳米合金催化剂简便地包覆在商用磁力搅拌棒上,制备一种特殊的磁性催化剂,且不引入铁元素。首先,利用丰富的天然“废料”木质素作为还原和稳定剂,以绿色方式制备金-钯纳米合金。假定金-钯纳米合金具有核壳结构,内核富含金,外壳富含钯。由于木质素的稳定作用,金-钯纳米合金能很好地分散在水介质中,并方便地包覆在商用搅拌棒表面。金钯纳米合金催化剂在硼氢化钠将4-硝基苯酚还原为4-氨基苯酚的反应中表现出优异的催化活性,速率常数()为0.239 min,高于金钯和金钯纳米合金,比单组分金或钯纳米颗粒高4倍。此外,即使经过七个催化循环,金-钯纳米合金催化剂的催化能力仍能保持。发现催化速率常数与搅拌棒的搅拌速度呈正相关。扫描电子显微镜分析揭示了木质素-纳米合金复合材料表面的沟壑和孔隙,这暗示了催化活性的可能机制。本研究不仅证明了木质素用于绿色合成金-钯纳米合金的可行性,还为未来固体/液体催化平台的生产提出了一种简便且创新的策略,该方法可用于包覆与试剂接触的任何表面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e49/6641716/e1fa3ce5734a/ao-2017-00830y_0005.jpg

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