Publication | Closed Access
Fabrication and Size‐Selective Bioseparation of Magnetic Silica Nanospheres with Highly Ordered Periodic Mesostructure
184
Citations
53
References
2008
Year
NanoparticlesMagnetic PropertiesEngineeringMetal NanoparticlesBio-based NanomaterialsChemistryMagnetoelastic MaterialsMagnetic MaterialsMagnetismChemical EngineeringPore SizeHybrid MaterialsMaterials ScienceNanoparticle CharacterizationNanotechnologyNanobiotechnologyNanomanufacturingO 4Fe 3Magnetic MaterialFunctional NanomaterialsNanomaterialsNatural SciencesSize‐selective BioseparationNanofabricationFunctional MaterialsMagnetic Silica NanospheresNanomagnetism
Abstract In this paper, we report a novel synthesis and selective bioseparation of the composite of Fe 3 O 4 magnetic nanocrystals and highly ordered MCM‐41 type periodic mesoporous silica nanospheres. Monodisperse superparamagnetic Fe 3 O 4 nanocrystals were synthesized by thermal decomposition of iron stearate in diol in an autoclave at low temperature. The synthesized nanocrystals were encapsulated in mesoporous silica nanospheres through the packing and self‐assembly of composite nanocrystal–surfactant micelles and surfactant/silica complex. Different from previous studies, the produced magnetic silica nanospheres (MSNs) possess not only uniform nanosize (90 ∼ 140 nm) but also a highly ordered mesostructure. More importantly, the pore size and the saturation magnetization values can be controlled by using different alkyltrimethylammonium bromide surfactants and changing the amount of Fe 3 O 4 magnetic nanocrystals encapsulated, respectively. Binary adsorption and desorption of proteins cytochrome c (cyt c ) and bovine serum albumin (BSA) demonstrate that MSNs are an effective and highly selective adsorbent for proteins with different molecular sizes. Small particle size, high surface area, narrow pore size distribution, and straight pores of MSNs are responsible for the high selective adsorption capacity and fast adsorption rates. High magnetization values and superparamagnetic property of MSNs provide a convenient means to remove nanoparticles from solution and make the re‐dispersion in solution quick following the withdrawal of an external magnetic field.
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