Magnetite synthesis from ferrous iron solution at pH 6.8 in a continuous stirred tank reactor

Author:

Mos Yvonne M.1,Zorzano Karin Bertens1,Buisman Cees J. N.1,Weijma Jan1

Affiliation:

1. Sub-Department of Environmental Technology, Wageningen University, P.O. Box 17, 6700 AA Wageningen, The Netherlands

Abstract

Abstract Partial oxidation of defined Fe2+ solutions is a well-known method for magnetite synthesis in batch systems. The partial oxidation method could serve as basis for an iron removal process in drinking water production, yielding magnetite (Fe3O4) as a compact and valuable product. As a first step toward such a process, a series of experiments was carried out, in which magnetite was synthesized from an Fe2+ solution in a 2 L continuous stirred tank reactor (CSTR) at atmospheric pressure and 32 °C. In four experiments, elevating the pH from an initial value of 5.5 or 6.0 to a final value of 6.8, 7.0 or 7.5 caused green rust to form, eventually leading to magnetite. Formation of NH4+ in the reactor indicated that NO3− and subsequently NO2− served as the oxidant. However, mass flow analysis revealed an influx of O2 to the reactor. In a subsequent experiment, magnetite formation was achieved in the absence of added nitrate. In another experiment, seeding with magnetite particles led to additional magnetite precipitation without the need for a pH elevation step. Our results show, for the first time, that continuous magnetite formation from an Fe2+ solution is possible under mild conditions, without the need for extensive addition of chemicals.

Publisher

IWA Publishing

Subject

Water Science and Technology,Environmental Engineering

Reference25 articles.

1. Partial oxidation as a rational approach to kinetic control in bioinspired magnetite synthesis;Chemistry – A European Journal,2015

2. Controlled formation of magnetite crystal by partial oxidation of ferrous hydroxide in the presence of recombinant magnetotactic bacterial protein mms6;Biomaterials,2007

3. Formation of magnetite nanoparticles at low temperature: from superparamagnetic to stable single domain particles;PLOS ONE,2013

4. Nucleation and growth of magnetite from solution;Nature Materials,2013

5. Phase transformations of iron oxides, oxohydroxides, and hydrous oxides in aqueous media;Advances in Colloid and Interface Science,1989

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