A Polymerization-Cutting Strategy: Self-Protection Synthesis of Thiol-Based Nanoporous Adsorbents for Efficient Mercury Removal

Yang Xu, Tianqi Wang, Zidong He, Minghong Zhou, Wei Yu, Buyin Shi, Kun Huang

Research output: Contribution to journalArticlepeer-review

13 Scopus citations

Abstract

Highly toxic heavy metal ions such as mercury ions (Hg2+) are a great threat to human life and the environment. Developing new strategies and materials to remove the toxic heavy metal ions has attracted more and more attentions. Herein a facile self-protection synthesis of thiol-based nanoporous adsorbents for efficient mercury removal via a polymerization-cutting strategy is reported. The direct free-radical polymerization of divinyl disulfide derivative and subsequently cutting off the disulfide linkage, without post-synthesis or modification, can give rise to an exceptionally high density of thiol chelating sites. Moreover, the resultant thiol-based nanoporous adsorbents (NAs-SH) exhibit a high saturation uptake capacity (1240 mg g−1) and reused ability for mercury removal from water solution. The proposed polymerization-cutting strategy may provide an alternative and cost-effective method for the design and synthesis of various efficient nanoporous adsorbents at large scale in the future.

Original languageEnglish
Pages (from-to)14436-14441
Number of pages6
JournalChemistry - A European Journal
Volume24
Issue number54
DOIs
StatePublished - 25 Sep 2018

Keywords

  • adsorbent
  • mercury
  • polymerization
  • self-protection
  • thiol

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