Adsorption and removal of arsenic(V) from drinking water by aluminum-loaded Shirasu-zeolite

Yan Hua Xu, Tsunenori Nakajima, Akira Ohki

Research output: Contribution to journalArticlepeer-review

242 Scopus citations

Abstract

The demand for effective and inexpensive adsorbents is to increase in response to the widespread recognition of the deleterious health effects of arsenic exposure through drinking water. A novel adsorbent, aluminum-loaded Shirasu-zeolite P1 (Al-SZP1), was prepared and employed for the adsorption and removal of arsenic(V) (As(V)) ion from aqueous system. The process of adsorption follows first-order kinetics and the adsorption behavior is fitted with a Freundlich isotherm. The adsorption of As(V) is slightly dependent on the initial pH over a wide range (3-10). Al-SZP1 was found with a high As(V) adsorption ability, equivalent to that of activated alumina, and seems to be especially suitable for removal of As(V) in low concentration. The addition of arsenite, chloride, nitrate, sulfate, chromate, and acetate ions hardly affected the As(V) adsorption, whereas the coexisting phosphate greatly interfered with the adsorption. The adsorption mechanism is supposed as a ligand-exchange process between As(V) ions and the hydroxide groups present on the surface of Al-SZP1. The adsorbed As(V) ions were desorbed effectively by a 40mM NaOH solution. Continuous operation was demonstrated in a column packed with Al-SZP1. The feasibility of this technique to practical utilization was also assessed by adsorption/desorption multiple cycles with in situ desorption/regeneration operation.

Original languageEnglish
Pages (from-to)275-287
Number of pages13
JournalJournal of Hazardous Materials
Volume92
Issue number3
DOIs
StatePublished - 10 Jun 2002
Externally publishedYes

Keywords

  • Adsorption
  • Aluminum-loaded Shirasu-zeolite
  • Arsenic(V)
  • Regeneration
  • Removal

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