Crystallization-based upcycling of iron oxyhydroxide for efficient arsenic capture in contaminated soils

Environ Int. 2023 May:175:107963. doi: 10.1016/j.envint.2023.107963. Epub 2023 May 10.

Abstract

Arsenic (As)-contaminated soil inevitably exists in nature and has become a global challenge for a sustainable future. Current processes for As capture using natural and structurally engineered nanomaterials are neither scientifically nor economically viable. Here, we established a feasible strategy to enhance As-capture efficiency and ecosystem health by structurally reorganizing iron oxyhydroxide, a natural As stabilizer. We propose crystallization to reorganize FeOOH-acetate nanoplatelets (r-FAN), which is universal for either scalable chemical synthesis or reproduction from natural iron oxyhydroxide phases. The r-FAN with wide interlayer spacing immobilizes As species through a synergistic mechanism of electrostatic intercalation and surface chemisorption. The r-FAN rehabilitates the ecological fitness of As-contaminated artificial and mine soils, as manifested by the integrated bioassay results of collembolan and plants. Our findings will serve as a cornerstone for crystallization-based material engineering for sustainable environmental applications and for understanding the interactions between soil, nanoparticles, and contaminants.

Keywords: Arsenic capture; Iron oxyhydroxide; Nanomaterial; Soil amendments; Sustainable Crystallization.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Arsenic* / analysis
  • Crystallization
  • Ecosystem
  • Soil / chemistry
  • Soil Pollutants* / analysis

Substances

  • Arsenic
  • ferric hydroxide
  • Soil Pollutants
  • Soil