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Study of the adsorption process of heavy metals cations on Kraft lignin

  • Hanchi Chen
  • , Xiaolin Qu
  • , Ni Liu
  • , Shuangfei Wang
  • , Xiaolong Chen
  • , Shijie Liu
  • Zhejiang University of Technology
  • SUNY College of Environmental Science and Forestry
  • Guangxi University

Research output: Contribution to journalArticlepeer-review

56 Scopus citations

Abstract

Kraft lignin is an effective heavy metal adsorbent with potential industrial applications, but the lack of mechanistic understanding of the process is impeding the development of this area, which is provided in this study. It was found the Pb(II) adsorption on Kraft lignin follows an “S” dependency on the environmental pH suggesting the existence of multiple functional groups. Structural characterization revealed adsorption functional groups including phenolic hydroxyl, carboxyl groups and electriferous groups existed in the Kraft lignin sample. Multivalent binding of a bivalent heavy metal cation to more than one functional groups is also expected. By understanding the binding mechanisms, a novel adsorption theory, “1-n cooperative adsorption theory” was developed to explain this complex interaction. The new theory managed to interpret the experimental data by considering binding mechanisms when an adsorbate can bind with multiple active sites with adsorbent-adsorbent interactions (cooperativity). Kraft lignin exhibit a high adsorption affinity towards Pb(II) (49.8 mg/g-lignin at neutral pH) and the process can be easily reversed through pH adjustment, which makes it a promising industrial Pb(II) adsorbent with regeneration abilities. This study provides guidelines for Kraft lignin applications as a heavy metal adsorbent, as well as theoretical backgrounds for other complicated multi-valent surface interactions.

Original languageEnglish
Pages (from-to)248-258
Number of pages11
JournalChemical Engineering Research and Design
Volume139
DOIs
StatePublished - Nov 2018

Keywords

  • Adsorption
  • Heavy metal
  • Kraft lignin
  • Wastewater

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