Your browser doesn't support javascript.
loading
As(V) removal capacity of FeCu bimetallic nanoparticles in aqueous solutions: The influence of Cu content and morphologic changes in bimetallic nanoparticles.
Sepúlveda, Pamela; Rubio, María A; Baltazar, Samuel E; Rojas-Nunez, J; Sánchez Llamazares, J L; Garcia, Alejandra García; Arancibia-Miranda, Nicolás.
Affiliation
  • Sepúlveda P; Facultad de Química and Biología, CEDENNA, Universidad de Santiago de Chile, USACH, Casilla 40, Santiago C.P. 33, Chile. Electronic address: pamela.sepulvedaor@usach.cl.
  • Rubio MA; Facultad de Química and Biología, CEDENNA, Universidad de Santiago de Chile, USACH, Casilla 40, Santiago C.P. 33, Chile.
  • Baltazar SE; Departamento de Física, CEDENNA, Universidad de Santiago de Chile, USACH, Av. Ecuador 3493, Santiago 9170124, Chile.
  • Rojas-Nunez J; Departamento de Física, CEDENNA, Universidad de Santiago de Chile, USACH, Av. Ecuador 3493, Santiago 9170124, Chile.
  • Sánchez Llamazares JL; Instituto Potosino de Investigación Científica and Tecnológica A.C., Camino a la Presa San José 2055 Col. Lomas 4ª, San Luis Potosí S.L.P. 78216, Mexico.
  • Garcia AG; Laboratorio de síntesis y modificación de nanoestructuras y materiales bidimensionales, Centro de Investigación en Materiales Avanzados, S.C. Alianza Norte 202, Parque PIIT, C.P. 66628 Apodaca Nuevo León, Mexico.
  • Arancibia-Miranda N; Facultad de Química and Biología, CEDENNA, Universidad de Santiago de Chile, USACH, Casilla 40, Santiago C.P. 33, Chile. Electronic address: nicolas.arancibia@usach.cl.
J Colloid Interface Sci ; 524: 177-187, 2018 Aug 15.
Article in En | MEDLINE | ID: mdl-29653311
ABSTRACT
In this study, bimetallic nanoparticles (BMNPs) with different mass ratios of Cu and Fe were evaluated. The influence of the morphology on the removal of pollutants was explored through theoretical and experimental studies, which revealed the best structure for removing arsenate (As(V)) in aqueous systems. To evidence the surface characteristics and differences among BMNPs with different mass proportions of Fe and Cu, several characterization techniques were used. Microscopy techniques and molecular dynamics simulations were applied to determine the differences in morphology and structure. In addition, X-ray diffraction (XRD) was used to determine the presence of various oxides. Finally, the magnetization response was evaluated, revealing differences among the materials. Our cumulative data show that BMNPs with low amounts of Cu (Fe0.9Cu0.1) had a non-uniform core-shell structure with agglomerate-type chains of magnetite, whereas a Janus-like structure was observed in BMNPs with high amounts of Cu (Fe0.5Cu0.5). However, a non-uniform core-shell structure (Fe0.9Cu0.1) facilitated electron transfer among Fe, Cu and As, which increased the adsorption rate (k), capacity (qe) and intensity (n). The mechanism of As removal was also explored in a comparative study of the phase and morphology of BMNPs pre- and post-sorption.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: J Colloid Interface Sci Year: 2018 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: J Colloid Interface Sci Year: 2018 Document type: Article