Monodispersed magnetite microspheres

Matrix: Fe3O4, surface group: -SiOH, particle size: 300-400 nm, unit: 5mg/ml

  • Product Code: 94713
  CAS:    1317-61-9
Molecular Weight: 231.53 g./mol Molecular Formula: Fe₃O₄
EC Number: 215-277-5 MDL Number: MFCD00011010
Melting Point: 1538 °C(lit.) Boiling Point:
Density: Storage Condition: 2-8°C
Product Description: Monodispersed magnetite microspheres are widely used in biomedical applications, particularly in magnetic resonance imaging (MRI) as contrast agents to enhance image clarity. They are also employed in targeted drug delivery systems, where their magnetic properties allow precise control and localization of therapeutic agents to specific areas in the body. In diagnostics, these microspheres are utilized in magnetic separation techniques for isolating and purifying biomolecules such as DNA, RNA, and proteins. Additionally, they play a role in hyperthermia treatment for cancer, where they generate heat under an alternating magnetic field to destroy tumor cells. Their uniform size and magnetic responsiveness make them valuable in various research and industrial applications, including environmental remediation for the removal of pollutants from water.
Product Specification:
Test Specification
PARTICLE SIZE 300-400
ICP: CONFIRMS FE COMPONENT Confirmed
SURFACE GROUP -SiOH
Sizes / Availability / Pricing:
Size (g) Availability Price Quantity
5.000 10-20 days ฿2,960.00
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Monodispersed magnetite microspheres
Monodispersed magnetite microspheres are widely used in biomedical applications, particularly in magnetic resonance imaging (MRI) as contrast agents to enhance image clarity. They are also employed in targeted drug delivery systems, where their magnetic properties allow precise control and localization of therapeutic agents to specific areas in the body. In diagnostics, these microspheres are utilized in magnetic separation techniques for isolating and purifying biomolecules such as DNA, RNA, and proteins. Additionally, they play a role in hyperthermia treatment for cancer, where they generate heat under an alternating magnetic field to destroy tumor cells. Their uniform size and magnetic responsiveness make them valuable in various research and industrial applications, including environmental remediation for the removal of pollutants from water.
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