Identificador persistente para citar o vincular este elemento: http://hdl.handle.net/10553/121440
Título: Scale Up Production of Nanoparticles: Continuous Supercritical Water Synthesis of Ce-Zn Oxides
Autores/as: Tighe, Christopher J.
Quesada Cabrera, Raúl 
Gruar, Robert I.
Darr, Jawwad A.
Clasificación UNESCO: 220201 Conductividad
230321-1 Síntesis de nuevos materiales a partir de compuestos organometálicos
Palabras clave: Electrical conductivity
Manufacturing
Nanomaterials
Nanoparticles
Oxides
Fecha de publicación: 2013
Publicación seriada: Industrial & Engineering Chemistry Research 
Resumen: A new continuous supercritical water pilot plant was used for the large-scale production of nanomaterials in the Zn-Ce oxide system. Similar to an existing laboratory continuous process, the pilot plant mixes aqueous solutions of the metal salts at room temperature with a flow of supercritical water (450 C and 24.1 MPa) in a confined jet mixer, resulting in the formation of nanoparticles in a continuous manner. The Zn-Ce oxide system, as synthesized here under identical concentration conditions than those used in our laboratory scale process (but 17.5 times total flow rate), has been used as a model system to identify differences in particle properties due to the physical enlargement of the mixer. The data collected for the nanoparticles from the pilot plant was compared to previous work using a laboratory scale continuous reactor. In the Ce-Zn binary oxide series, it was shown that Zn had an apparent solubility of about 20 mol% in the CeO2 (fluorite) lattice, whereafter a composite of the two phases was obtained, consistent with the high solubility observed in previous studies using a continuous hydrothermal process. Because of the inherent scalability of the continuous process and excellent mixing characteristics of the confined jet mixer, it was found that the pilot plant nanoparticles were almost indistinguishable from those made on the laboratory scale.
URI: http://hdl.handle.net/10553/121440
ISSN: 0888-5885
DOI: 10.1021/ie3025642
Fuente: Industrial & Engineering Chemistry Research [ISSN 0888-5885], v. 52(16), p. 5522-5528
Colección:Artículos
Adobe PDF (1,63 MB)
Vista completa

Citas SCOPUSTM   

86
actualizado el 21-jul-2024

Citas de WEB OF SCIENCETM
Citations

79
actualizado el 14-jul-2024

Visitas

29
actualizado el 06-abr-2024

Descargas

43
actualizado el 06-abr-2024

Google ScholarTM

Verifica

Altmetric


Comparte



Exporta metadatos



Los elementos en ULPGC accedaCRIS están protegidos por derechos de autor con todos los derechos reservados, a menos que se indique lo contrario.