+Advanced Search
Removal Mechanism of Ni(II) from Aqueous Solution by Fe-Si-B Metallic Glass Powder
Author:
Affiliation:

1.State Key Laboratory of Advanced Processing and Recycling of Nonferrous Metals, Lanzhou University of Technology, Lanzhou 730050, China;2.Wenzhou Engineering Institute of Pump & Valve, Lanzhou University of Technology, Wenzhou 325105, China

Clc Number:

TG139+.8;TG249.9

Fund Project:

National Natural Science Foundation of China (51661015, 52061024); Zhejiang Provincial Natural Science Foundation (LQ20E010002)

  • Article
  • |
  • Figures
  • |
  • Metrics
  • |
  • Reference
  • |
  • Related
  • |
  • Cited by
  • |
  • Materials
  • |
  • Comments
    Abstract:

    The commercial Fe-Si-B metallic glass (Fe-Si-BMG) powder and the widely used powder of zero valent iron (ZVI), namely Fe0, were used to eliminate the Ni(II) from aqueous solution. Kinetic analysis results indicate that the removal efficiency of Fe-Si-BMG powder in removing Ni(II) is about 38 times faster than that of the Fe0 powder. Morphology observation shows that the product layers on the surface of Fe-Si-BMG powder are composed of homogeneous and loose whiskers, which peel off more easily from the surface during the agitation process, compared with those of Fe0 powder. Chemical composition analysis about the surface of Fe-Si-BMG powders before and after reaction shows that Fe-Si-BMG powder can eliminate the Ni(II) through surface adsorption, reduction, and coprecipitation mechanisms; while Fe0 powder removes the Ni(II) in solution mainly through surface adsorption and coprecipitation mechanisms.

    Reference
    Related
    Cited by
Get Citation

[Zhang Xiangyun, Zhang Mi, Li Jinqi, Du Jinying, Yuan Zizhou. Removal Mechanism of Ni(II) from Aqueous Solution by Fe-Si-B Metallic Glass Powder[J]. Rare Metal Materials and Engineering,2022,51(1):60~65.]
DOI:10.12442/j. issn.1002-185X.20200813

Copy
Article Metrics
  • Abstract:
  • PDF:
  • HTML:
  • Cited by:
History
  • Received:October 21,2020
  • Revised:November 18,2020
  • Adopted:December 23,2020
  • Online: February 04,2022
  • Published: January 28,2022