Kirkendall Effect Boosts Phosphorylated nZVI for Efficient Heavy Metal Wastewater Treatment
Эффект Киркендалла усиливает действие фосфорилированного nZVI для эффективной очистки сточных вод от тяжелых металлов
2021-05-15
SCID: 54.1/yzm9c8uh
Discuss with AI
Kirkendall effectgalvanic exchangeheavy metal wastewater treatmentphosphorylated nanoscale zero-valent ironradial nanocracks
Figures from the paper
Abstract (AI)
Abstract Removal of non‐biodegradable heavy metals has been the top priority in wastewater treatment and the development of green technologies remains a significant challenge. We demonstrate that phosphorylated nanoscale zero‐valent iron (nZVI) is promising for removal of heavy metals (Ni II , Cu II , Cr VI , Hg II ) via a boosted Kirkendall effect. Phosphorylation confines tensile hoop stress on the nZVI particles and “breaks” the structurally dense spherical nZVI to produce numerous radial nanocracks. Exemplified by Ni II removal, the radial nanocracks favor the facile inward diffusion of Ni II and the rapid outward transport of electrons and ferrous ions through the oxide shell for surface (Ni II /electron) and boundary (Ni II /Fe 0 ) galvanic exchange. Accompanied by a pronounced hollowing phenomenon, phosphorylated nZVI can instantly reduce and immobilize Ni II throughout the oxide shell with a high capacity (258 mg Ni g −1 Fe). For real electroplating factory wastewater treatment, this novel nZVI performs simultaneous Ni II and Cu II removal, producing effluent of stable quality that meets local discharge regulations.
Key Findings
1
In real electroplating wastewater, phosphorylated nZVI simultaneously removes Ni(II) and Cu(II), producing effluent that meets local discharge regulations.
2
Phosphorylated nZVI rapidly reduces and immobilizes Ni(II) throughout its oxide shell, achieving a capacity of 258 mg Ni per gram Fe.
3
Phosphorylated nanoscale zero-valent iron removes Ni(II), Cu(II), Cr(VI), and Hg(II) through a boosted Kirkendall effect.
4
Phosphorylation generates tensile hoop stress that creates numerous radial nanocracks in otherwise dense spherical nZVI particles.
5
Radial nanocracks facilitate inward heavy-metal diffusion and outward transport of electrons and ferrous ions, accelerating galvanic exchange.
Research Object
phosphorylated nanoscale zero-valent iron (nZVI) particles used for heavy-metal wastewater treatment
Research Subject
the boosted Kirkendall-effect-driven reduction, immobilization, and removal of heavy-metal ions, including the associated nanocracking, diffusion, galvanic exchange, hollowing, and treatment performance
Publication Details
Publication Date
2021-05-15
Journal
Publisher
ISSN
Cited by
235
Access Type
Author Information
Download PDF
Subscribe to digest