Laser Ablation of NiFe 2 O 4 and CoFe 2 O 4 Nanoparticles.

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Title: Laser Ablation of NiFe 2 O 4 and CoFe 2 O 4 Nanoparticles.
Authors: Sachse, Erik1 (AUTHOR) erik.sachse@web.de, Escobar-Castillo, Marianela1 (AUTHOR) doru.lupascu@uni-due.de, Waag, Friedrich2 (AUTHOR) friedrich.waag@uni-due.de, Gökce, Bilal2,3 (AUTHOR) goekce@uni-wuppertal.de, Salamon, Soma4 (AUTHOR) soma.salamon@uni-due.de, Landers, Joachim4 (AUTHOR) joachim.landers@uni-due.de, Wende, Heiko4 (AUTHOR) heiko.wende@uni-due.de, Lupascu, Doru C.1 (AUTHOR)
Source: Nanomaterials (2079-4991). Jun2022, Vol. 12 Issue 11, p1872-1872. 13p.
Subjects: Laser ablation, Nanoparticles, Nanoparticle size, Magnetic separation, Pulsed lasers, Ceramic powders
Abstract: Pulsed laser ablation in liquids was utilized to prepare NiFe2O4 (NFO) and CoFe2O4 (CFO) nanoparticles from ceramic targets. The morphology, crystallinity, composition, and particle size distribution of the colloids were investigated. We were able to identify decomposition products formed during the laser ablation process in water. Attempts to fractionate the nanoparticles using the high-gradient magnetic separation method were performed. The nanoparticles with crystallite sizes in the range of 5–100 nm possess superparamagnetic behavior and approximately 20 Am2/kg magnetization at room temperature. Their ability to absorb light in the visible range makes them potential candidates for catalysis applications in chemical reactions and in biomedicine. [ABSTRACT FROM AUTHOR]
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Database: Engineering Source
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Abstract:Pulsed laser ablation in liquids was utilized to prepare NiFe2O4 (NFO) and CoFe2O4 (CFO) nanoparticles from ceramic targets. The morphology, crystallinity, composition, and particle size distribution of the colloids were investigated. We were able to identify decomposition products formed during the laser ablation process in water. Attempts to fractionate the nanoparticles using the high-gradient magnetic separation method were performed. The nanoparticles with crystallite sizes in the range of 5–100 nm possess superparamagnetic behavior and approximately 20 Am2/kg magnetization at room temperature. Their ability to absorb light in the visible range makes them potential candidates for catalysis applications in chemical reactions and in biomedicine. [ABSTRACT FROM AUTHOR]
ISSN:20794991
DOI:10.3390/nano12111872