N,N'-Bis(acryloyl)cystamine

98%

  • Product Code: 72655
  CAS:    60984-57-8
Molecular Weight: 260.38 g./mol Molecular Formula: C₁₀H₁₆N₂O₂S₂
EC Number: MDL Number: MFCD00036225
Melting Point: Boiling Point:
Density: Storage Condition: -20°C
Product Description: N,N'-Bis(acryloyl)cystamine is widely used in the field of polymer chemistry and biomedical research due to its unique properties. It serves as a crosslinking agent in the synthesis of hydrogels, which are utilized in drug delivery systems, tissue engineering, and wound healing applications. The compound's disulfide bond allows for responsive degradation under reducing conditions, making it suitable for creating smart materials that release therapeutic agents in targeted environments. Additionally, it is employed in the development of biodegradable polymers and surface modifications for biomaterials, enhancing their biocompatibility and functionality. Its role in forming reversible networks also makes it valuable in designing self-healing materials.
Product Specification:
Test Specification
APPEARANCE Powder Packaged under argon
PURITY 98-100
MELTING POINT 123-124
Infrared spectrum Conforms to Structure
Sizes / Availability / Pricing:
Size (g) Availability Price Quantity
0.250 10-20 days ฿620.00
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1.000 10-20 days ฿1,860.00
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5.000 10-20 days ฿5,590.00
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25.000 10-20 days ฿24,980.00
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N,N'-Bis(acryloyl)cystamine
N,N'-Bis(acryloyl)cystamine is widely used in the field of polymer chemistry and biomedical research due to its unique properties. It serves as a crosslinking agent in the synthesis of hydrogels, which are utilized in drug delivery systems, tissue engineering, and wound healing applications. The compound's disulfide bond allows for responsive degradation under reducing conditions, making it suitable for creating smart materials that release therapeutic agents in targeted environments. Additionally, it is employed in the development of biodegradable polymers and surface modifications for biomaterials, enhancing their biocompatibility and functionality. Its role in forming reversible networks also makes it valuable in designing self-healing materials.
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