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Updated: Jan 6, 2026

Removal of Arsenic Using a Cationic Polymer Gel Impregnated with Iron Hydroxide
Published on: June 28, 2019
Nonclassical Two-Stage Pathways for the Formation of Amorphous Ferric Arsenate: Influence of Temperature, pH, and
Pei Chang1,2, Xiangyu Zhu2, Dongxing Guan3
1Research Center for Planetary Science, College of Earth and Planetary Sciences, Chengdu University of Technology, Chengdu 610059, China.
Abstract:
Amorphous ferric arsenate (AFA) is a vital sink of arsenic in acidic, As-rich environments. Although its properties and transformation into scorodite are well-documented, the precipitation process of AFA remains understudied. The present study investigates the precipitation kinetics of AFA in relation to pH, As/Fe ratio, and temperature using both in situ and ex situ techniques. In situ small-angle X-ray scattering revealed a two-stage AFA formation process irrespective of the controlled variables. Stage I features the emergence of subnano- to nanoparticles with radii ranging from 8.9 to 10.1 Å without significant growth. Ex situ analyses by X-ray absorption fine structure further indicate these particles may have a similar structure to arsenate-FeO6 octahedra complexes. Stage II is marked by the growth of these particles into medium-sized particles, likely through a particle-by-particle attachment mode. A positive correlation between temperature and particle sizes was observed in stage I, likely via enhancing FeO6 octahedra incorporation into Fe-As complexes. Moreover, both pH and As/Fe ratios were found to accelerate precipitation kinetics, possibly by reducing electric repulsive interactions between small particles. These findings enhance our understanding of mineralogical transformations in Fe-As systems and provide insights into developing high-efficiency As remediation strategies for both natural and industrial applications.
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