AbstractThe scope of this study was to prepare different organosilane-modified Fe3O4@SiO2 core magnetic nanocomposites with immobilized lipase and explore their potential application in biodiesel field. Fe3O4 magnetic nanoparticles prepared by co-precipitation method were coated with various ratios of SiO2 as per Stöber method and further functionalized by different organosilane compounds APTES (3-aminopropyltriethoxysilane) and MPTMS (3-mercaptopropyltrimethoxysilane). Functionalized Fe3O4@SiO2 magnetic nanoparticles were immobilized with free lipase NS81006 by glutaraldehyde cross-linking reagent. The functional groups, structure, morphology and magnetic susceptibility of synthesized and modified Fe3O4@SiO2 magnetic nanoparticles were cha...
Biocatalytic processes often require a full recycling of biocatalysts to optimize economic benefits ...
tMagnetic nanoparticles based on Fe3O4(MNP) were coated with a silica (with thin or thick layers) pr...
Oil palm leaves (OPL) silica (SiO2) can replace the energy-intensive, commercially produced SiO2. Mo...
AbstractThe scope of this study was to prepare different organosilane-modified Fe3O4@SiO2 core magne...
In this work, superparamagnetic Fe3O4 nanoparticles were synthesized by chemical co-precipitation us...
In this research, lipase produced from the bacteria Pseudomonas aeruginosa was immobilized on rice h...
A cost-effective design of reusable enzyme-functionalized particles with better catalytic activity i...
The Fe3O4 magnetic nanoparticles were prepared by precipitating ferrous ion (Fe2+) and ferric ion (F...
Synthesis of surface modified/multi-functional nanoparticles has become a vital research area of mat...
In our approach for magnetic iron oxide nanoparticles surface modification, the fabrication of an in...
A facile approach for the preparation of core–shell structured poly(acrylic acid) (PAA)-coated Fe<s...
A new strategy to attach magnetic Fe3O4 nanoparticles (NPs) onto the commercially available immobili...
BACKGROUND: Biocatalytic processes often require a full recycling of biocatalysts to optimize econom...
Magnetic nanoparticles based on Fe3O4(MNP) were coated with a silica (with thin or thick layers) pri...
A promising strategy for lipase immobilization based on the natural polymers of polysaccharides (hya...
Biocatalytic processes often require a full recycling of biocatalysts to optimize economic benefits ...
tMagnetic nanoparticles based on Fe3O4(MNP) were coated with a silica (with thin or thick layers) pr...
Oil palm leaves (OPL) silica (SiO2) can replace the energy-intensive, commercially produced SiO2. Mo...
AbstractThe scope of this study was to prepare different organosilane-modified Fe3O4@SiO2 core magne...
In this work, superparamagnetic Fe3O4 nanoparticles were synthesized by chemical co-precipitation us...
In this research, lipase produced from the bacteria Pseudomonas aeruginosa was immobilized on rice h...
A cost-effective design of reusable enzyme-functionalized particles with better catalytic activity i...
The Fe3O4 magnetic nanoparticles were prepared by precipitating ferrous ion (Fe2+) and ferric ion (F...
Synthesis of surface modified/multi-functional nanoparticles has become a vital research area of mat...
In our approach for magnetic iron oxide nanoparticles surface modification, the fabrication of an in...
A facile approach for the preparation of core–shell structured poly(acrylic acid) (PAA)-coated Fe<s...
A new strategy to attach magnetic Fe3O4 nanoparticles (NPs) onto the commercially available immobili...
BACKGROUND: Biocatalytic processes often require a full recycling of biocatalysts to optimize econom...
Magnetic nanoparticles based on Fe3O4(MNP) were coated with a silica (with thin or thick layers) pri...
A promising strategy for lipase immobilization based on the natural polymers of polysaccharides (hya...
Biocatalytic processes often require a full recycling of biocatalysts to optimize economic benefits ...
tMagnetic nanoparticles based on Fe3O4(MNP) were coated with a silica (with thin or thick layers) pr...
Oil palm leaves (OPL) silica (SiO2) can replace the energy-intensive, commercially produced SiO2. Mo...