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Sorption of ionized dyes on high-salinity microalgal residue derived biochar: Electron acceptor-donor and metal-organic bridging mechanisms

  • Xuefei Tan
  • , Shishu Zhu
  • , Pau Loke Show
  • , Haiqun Qi
  • , Shih Hsin Ho*
  • *Corresponding author for this work
  • Heilongjiang Institute of Technology
  • School of Environment, Harbin Institute of Technology
  • Dalian SEM Bio-Engineering Technology Co. Ltd.
  • Sun Yat-Sen University
  • University of Nottingham

Research output: Contribution to journalArticlepeer-review

Abstract

Biochar (BC) has attracted much attention owing to its superior sorption capacity towards ionized organic contaminants. However, the mechanism of ionized organics sorption occurring within BC containing large amounts of minerals is still controversial. In this study, we demonstrate the physicochemical structure of high-salinity microalgal residue derived biochar (HSBC) and elucidate the corresponding sorption mechanisms for four ionized dyes along with determining the crucial role of involved minerals. The results indicate that sodium and calcium minerals mainly exist within HSBCs, and the pyrolysis temperature can dramatically regulate the phases and interfacial property of both carbon matrix and minerals. As a result, the HSBC shows a higher sorption potential, benefiting from abundant functional groups and high content of inorganic minerals. Using theoretical calculations, the activities of electron donor-acceptor interaction between HSBCs and different dyes are clearly illustrated, thereby identifying the critical role of Ca2+ in enhancing the removal of ionized dyes in HSBCs. In addition, Ca-containing minerals facilitate the sorption of ionized dyes in HSBCs by forming ternary complexes through metal-bridging mechanism. These results of mineral-induced dye sorption mechanisms help to better understand the sorption of ionized organics in high-salt containing BC and provide a new disposal strategy for hazardous microalgal residue, as well as provide a breakthrough in making the remediation of ionized organic contaminated microalgal residue derived absorbent feasible.

Original languageEnglish
Article number122435
JournalJournal of Hazardous Materials
Volume393
DOIs
StatePublished - 5 Jul 2020
Externally publishedYes

Keywords

  • Biochar
  • Dye absorbent
  • Electron acceptor-donor
  • Metal-organic bridging
  • Microalgal residue

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