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May 26, 2007Environmental Science & Technology490 citations

Removal Mechanism of As(III) by a Novel Fe−Mn Binary Oxide Adsorbent:  Oxidation and Sorption

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GZGaosheng ZhangJQJiuhui QuHLHuijuan Liu

Key Points

  • To elucidate the chemical mechanism of enhanced As(III) removal by a novel Fe-Mn binary oxide adsorbent from aqueous systems.
  • Treated Fe-Mn binary oxide with Na2SO3 to selectively reduce manganese oxide and diminish oxidative capacity prior to arsenic exposure.
  • Characterized original and treated adsorbent surfaces before and after As(III) and As(V) reaction using Fourier transform infrared spectroscopy (FTIR) and X-ray photoelectron spectroscopy (XPS).
  • Na2SO3 pretreatment inhibited As(III) removal while enhancing As(V) uptake, confirming the essential oxidative role of manganese dioxide.
  • XPS and FTIR demonstrated that manganese dioxide oxidizes As(III) to As(V), followed by As(V) adsorption onto iron oxide hydroxyl sites (Fe-OH).
  • Higher As(III) uptake relative to As(V) was attributed to the generation of fresh surface adsorption sites during active As(III) oxidation.

Abstract

A novel Fe-Mn binary oxide adsorbent was developed for effective As(III) removal, which is more difficult to remove from drinking water and much more toxic to humans than As(V). The synthetic adsorbent showed a significantly higher As(III) uptake than As(V). The mechanism study is therefore necessary for interpreting such result and understanding the As(III) removal process. A control experiment was conducted to investigate the effect of Na2SO3-treatment on arsenic removal, which can provide useful information on As(III) removal mechanism. The adsorbent was first treated by Na2SO3, which can lower its oxidizing capacity by reductive dissolution of the Mn oxide and then reacted with As(V) or As(III). The results showed that the As(V) uptake was enhanced while the As(III) removal was inhibited after the pretreatment, indicating the important role of manganese dioxide during the As(III) removal. FTIR along with XPS was used to analyze the surface change of the original Fe-Mn adsorbent and the pretreated adsorbent before and after reaction with As(V) or As(III). Change in characteristic surface hydroxyl groups (Fe-OH, 1130, 1048, and 973 cm(-1)) was observed by the FTIR. The determination of arsenic oxidation state on the solid surface after reaction with As(III) revealed that the manganese dioxide instead of the iron oxide oxidized As(III) to As(V). The iron oxide was dominant for adsorbing the formed As(V). An oxidation and sorption mechanism for As(III) removal was developed. The relatively higher As(III) uptake may be attributed to the formation of fresh adsorption sites at the solid surface during As(III) oxidation.

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Cite This Study

Zhang et al. (2007) studied this question.

synapsesocial.com/papers/69d9e99076094b1fd7a3bfdbhttps://doi.org/10.1021/es063010u
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