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◆ Journal of hazardous materials2026-09-11

From delivery to lock-in: Ascorbate-functionalized magnetite achieves reaction-triggered self-immobilization for sustainable Cr(VI) remediation in soil and groundwater.

Sunho Yoon, Minhee Choi, Sungjun Bae

原始摘要(英文原文)· Original abstract
Although numerous studies have aimed to enhance the reactivity and transportability of Fe-based materials for soil and groundwater remediation, there is a limited understanding of the transport behavior of injected materials and their post-reaction fate in subsurface environments. In this study, dispersible magnetite nanoparticles were synthesized via ascorbic acid functionalization (AA@Fe3O4) and applied to Cr(VI) removal in batch and column experiments. While Fe3O4 exhibited rapid aggregation and limited transport, AA@Fe3O4 showed improved dispersion in water and enhanced mobility in the soil column. Despite the unfavorable electrostatic interaction with anionic Cr(VI), AA@Fe3O4 demonstrated higher removal capacity (27.66 mg g-1) than Fe3O4 (17.47 mg g-1). The enhanced performance was attributed to the redox-active role of surface-bound ascorbate, which promoted Fe(III)/Fe(II) redox cycling and reductive dissolution of the Fe3O4 surface, thereby contributing to sustained Cr(VI) reduction. Following Cr(VI) reduction, AA@Fe3O4 transformed into aggregated clusters and film-like interparticle networks. The reduced Cr(III) species were preferentially associated with Fe-rich domains and immobilized within the aggregated matrix, likely through Fe-Cr oxyhydroxide formation and interaction with oxidized AA derivatives. These findings demonstrate that AA functionalization mitigates the conventional trade-off between reactivity and mobility, enabling mobile delivery, enhanced Cr(VI) reduction, and subsequent Cr immobilization through reaction-induced aggregation.
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From delivery to lock-in: Ascorbate-functionalized magnetite achieves reaction-triggered self-immobilization for sustainable Cr(VI) remediation in soil and groundwater. — 科研速览 Science Skim