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Updated: Jun 11, 2026

Two-way Valorization of Blast Furnace Slag: Synthesis of Precipitated Calcium Carbonate and Zeolitic Heavy Metal Adsorbent
Published on: February 21, 2017
Iron oxide nano-adsorbent doped with nickel and palladium for phosphorus removal from water
Pamela Sepúlveda1,2, Jonathan Suazo-Hernández3,4,5, Lizethly Cáceres-Jensen6
1Centro de Nanotecnología Aplicada (CNAP), Facultad de Ciencias, Ingeniería y Tecnología, Universidad Mayor Camino la Pirámide 5750 Huechuraba 8580745 Santiago Chile.
Abstract:
Excessive phosphorus (P) in surface and ground water can cause serious environmental issues. This study aims to synthesize and characterize novel iron oxides (Fe x O y ) nanoparticles (NPs) with and without Ni and Ni-Pd doping and unravel the NPs' performance and mechanism for P removal from water. X-ray diffraction, energy dispersive X-ray spectroscopy and X-ray photoelectron spectroscopy results confirmed successful doping of Ni and Ni-Pd on Fe x O y NPs. Fe x O y -Ni NPs exhibited a higher specific surface area and isoelectric point than Fe x O y and Fe x O y -Ni-Pd NPs. The kinetic data for P adsorption on Fe x O y NPs fitted to the pseudo-first order model and Fe x O y -Ni and Fe x O y -Ni-Pd NPs fitted to the pseudo-second order model. Adsorption isotherm data for Fe x O y NPs fitted to the Freundlich model and Fe x O y -Ni and Fe x O y -Ni-Pd NPs fitted to the Langmuir model. The maximum P adsorption capacity was the highest for Fe x O y -Ni (35.66 mg g-1) followed by Fe x O y -Ni-Pd (30.73 mg g-1) and Fe x O y NPs (21.97 mg g-1), which was opposite to the P desorption order of these adsorbents. The adsorption and characterization analysis suggested that inner-sphere complexes and co-precipitation were the key mechanisms for P adsorption on Fe x O y -Ni and Fe x O y -Ni-Pd NPs. Therefore, Fe x O y -Ni NPs were a highly effective adsorbent for removing P from water.
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