732621
Poly(ethylene glycol) methyl ether
average MN 10,000, methoxy, hydroxyl
Sinônimo(s):
Polyethylene glycol, Methoxy poly(ethylene glycol), Polyethylene glycol monomethyl ether, mPEG
About This Item
Produtos recomendados
product name
Poly(ethylene glycol) methyl ether, average Mn 10,000
densidade de vapor
>1 (vs air)
pressão de vapor
0.05 mmHg ( 20 °C)
forma
chunks
powder or crystals
peso molecular
average Mn 10,000
pf
60-65 °C
Mw/Mn
≤1.2
Ω-final
hydroxyl
α-final
methoxy
temperatura de armazenamento
−20°C
InChI
1S/C3H8O2/c1-5-3-2-4/h4H,2-3H2,1H3
chave InChI
XNWFRZJHXBZDAG-UHFFFAOYSA-N
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Código de classe de armazenamento
10 - Combustible liquids
Classe de risco de água (WGK)
WGK 1
Ponto de fulgor (°F)
415.0 °F - closed cup
Ponto de fulgor (°C)
212.80 °C - closed cup
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Artigos
Progress in biotechnology fields such as tissue engineering and drug delivery is accompanied by an increasing demand for diverse functional biomaterials. One class of biomaterials that has been the subject of intense research interest is hydrogels, because they closely mimic the natural environment of cells, both chemically and physically and therefore can be used as support to grow cells. This article specifically discusses poly(ethylene glycol) (PEG) hydrogels, which are good for biological applications because they do not generally elicit an immune response. PEGs offer a readily available, easy to modify polymer for widespread use in hydrogel fabrication, including 2D and 3D scaffold for tissue culture. The degradable linkages also enable a variety of applications for release of therapeutic agents.
Devising biomaterial scaffolds that are capable of recapitulating critical aspects of the complex extracellular nature of living tissues in a threedimensional (3D) fashion is a challenging requirement in the field of tissue engineering and regenerative medicine.
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