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通过球磨和化学沉积同步进行一锅法合成高活性镍/铁纳米双金属。

One-pot synthesis of highly active Ni/Fe nano-bimetal by simultaneous ball milling and chemical deposition.

作者信息

Zhang Shuo-Shuo, Yang Ning, Ni Shou-Qing, Natarajan Vinothkumar, Ahmad Hafiz Adeel, Xu Shiping, Fang Xu, Zhan Jinhua

机构信息

Shandong Provincial Key Laboratory of Water Pollution Control and Resource Reuse, School of Environmental Science and Engineering, Shandong University No. 27 Shanda South Road Jinan 250100 Shandong PR China

Key Laboratory for Colloid & Interface Chemistry of Education Ministry, Department of Chemistry, Shandong University Jinan 250100 PR China

出版信息

RSC Adv. 2018 Jul 25;8(47):26469-26475. doi: 10.1039/c8ra04426k. eCollection 2018 Jul 24.

Abstract

In this study, nanoscale bimetallic particles (Ni/Fe) were prepared by a simultaneous ball milling and chemical deposition process (B&C) with high dechlorination activity for 4-chlorophenol (4-CP). The results suggest that the introduction of Ni significantly improved the dechlorination of 4-CP. The dechlorination activity of Ni/Fe-B&C ( = 0.168 min) was increased significantly with a lengthening of the milling time and showed maximum activity at the milling time of 4 h. Bimetals prepared with the incorporation of Ni into Fe can quickly and completely dechlorinate 4-CP within 90 min reaction time. The dechlorination activity was mainly attributed to the synergistic effects of Ni and Fe. The dechlorination rate was increased with increasing Ni-Fe dosage but decreased with increasing solution pH and 4-CP concentration. Ni/Fe-B&C catalyst could be reused 10 times at pH below 5.0. This approach could offer great opportunities for both research and industrial applications to eliminate chlorinated organic pollutants.

摘要

在本研究中,通过同时进行球磨和化学沉积过程(B&C)制备了具有高脱氯活性的纳米级双金属颗粒(Ni/Fe),用于对4-氯苯酚(4-CP)进行脱氯。结果表明,Ni的引入显著提高了4-CP的脱氯效果。Ni/Fe-B&C(k = 0.168 min⁻¹)的脱氯活性随着球磨时间的延长而显著增加,并在球磨4 h时表现出最大活性。通过将Ni掺入Fe中制备的双金属在90分钟的反应时间内可以快速且完全地使4-CP脱氯。脱氯活性主要归因于Ni和Fe的协同作用。脱氯速率随着Ni-Fe用量的增加而增加,但随着溶液pH值和4-CP浓度的增加而降低。Ni/Fe-B&C催化剂在pH值低于5.0时可重复使用10次。这种方法可为消除氯代有机污染物的研究和工业应用提供巨大机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/68bc/9083127/2460d71b9ba7/c8ra04426k-f1.jpg

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