[Reduction of nitrobenzene by iron oxides bound Fe(II) system at different pH values]

Huan Jing Ke Xue. 2009 Jul 15;30(7):1937-41.
[Article in Chinese]

Abstract

Batch tests were conducted to investigate the reductive transformation of nitrobenzene by goethite, hematite, magnetite and steel converter slag bound Fe(II) system. And the reduction mechanism was explored at different pH values. Experimental results showed that hematite, magnetite and steel converter slag could adsorb Fe(II) on surfaces and form iron oxides bound Fe(II) system at pH from 6.5 to 7.0. The systems had strong reductive capacity and could reduce nitrobenzene to aniline. The reduction efficiency of nitrobenzene in surface bound Fe(II) system followed the sequence of magnetite, hematite and steel converter slag from high to low. The reduction efficiency of hematite and magnetite system increased with pH increasing. While it was almost pH independent in steel converter slag system. Although goethite adsorbed most of Fe(II) in solution, the adsorbed Fe(II) had no reductive activity for nitrobenzene. At pH 6.0, small amount of Fe(II) was adsorbed on magnetite and hematite and the systems did not show reductive activity for nitrobenzene. However, steel converter slag could adsorb Fe(II) at pH 6.0 and reduction efficiency almost equaled to the value at pH 7.0. When pH was above 7.5, dissolved Fe(II) could be converted to Fe(OH)2 and the newly formed Fe(OH)2 became the main redactor in the system. Under alkali condition, the presence of iron oxides inhibited the reduction capacity of system.

Publication types

  • English Abstract
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Ferric Compounds / chemistry*
  • Ferrous Compounds / chemistry*
  • Hydrogen-Ion Concentration
  • Nitrobenzenes / chemistry*
  • Oxidation-Reduction
  • Water Pollutants, Chemical / chemistry*
  • Water Purification / methods*

Substances

  • Ferric Compounds
  • Ferrous Compounds
  • Nitrobenzenes
  • Water Pollutants, Chemical
  • ferric oxide
  • nitrobenzene
  • ferrous oxide