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Sigma-Aldrich

1,6-Hexanediol diacrylate

technical grade, 80%

Sinônimo(s):

Hexamethylene glycol diacrylate, Hexane-1,6-diyl diacrylate, HDODA

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About This Item

Fórmula linear:
[H2C=CHCO2(CH2)3-]2
Número CAS:
Peso molecular:
226.27
Número CE:
Número MDL:
Código UNSPSC:
12162002
ID de substância PubChem:
NACRES:
NA.23

grau

technical grade

Nível de qualidade

densidade de vapor

>1 (vs air)

pressão de vapor

<0.01 mmHg ( 20 °C)

Ensaio

80%

forma

liquid

contém

100 ppm monomethyl ether hydroquinone as inhibitor

índice de refração

n20/D 1.456 (lit.)

densidade

1.01 g/mL at 25 °C (lit.)

cadeia de caracteres SMILES

C=CC(=O)OCCCCCCOC(=O)C=C

InChI

1S/C12H18O4/c1-3-11(13)15-9-7-5-6-8-10-16-12(14)4-2/h3-4H,1-2,5-10H2

chave InChI

FIHBHSQYSYVZQE-UHFFFAOYSA-N

Descrição geral

1,6-Hexanediol diacrylate is a di-functional monomer commonly used in the polymer industry for producing various types of polymers. It is a viscous liquid, that is often used as a crosslinking agent in radical polymerization reactions. Additionally, it also finds use in various fields such as coatings, adhesives, 3D printing, medical devices, and textiles due to its excellent polymerization properties and versatility.

Aplicação

1,6-Hexanediol diacrylate can be used as:
  • A monomer for the synthesis of poly(1,6-hexanediol diacrylate) (PHDA)-based polymer microspheres and bifunctional microcapsules. The resulting PHDA-based polymer embedded with TiO2 nanoparticles finds uses in various potential applications in fields such as sensing, drug delivery, and photonics.
  • A sensitizer in the UV-curable inks commonly used in the printing industry.
  • A cross-linking agent in conjunction with a photocatalytic system to modify cellulose material. The resulting crosslinked cellulose material finds uses in various potential applications such as paper manufacturing, textiles, and biomedical devices.
  • A monomer in the synthesis of polyurethane acrylate (PUA) which is used to produce polymer electrolytes for use in lithium batteries.
1,6-Hexanedioldiacrylate can be used as a starting material to synthesize:
  • A resin (copolymer of 1,6-hexanediol diacrylate and styrene) by suspension polymerization, which is applicable in the preparation of hydrophobic peptide sequences.
  • Monodispersed poly(HDDA)/TiO2 microspheres, applicable in the degradation of methylene blue.

Pictogramas

Exclamation markEnvironment

Palavra indicadora

Warning

Frases de perigo

Classificações de perigo

Aquatic Acute 1 - Aquatic Chronic 2 - Eye Irrit. 2 - Skin Irrit. 2 - Skin Sens. 1

Código de classe de armazenamento

10 - Combustible liquids

Classe de risco de água (WGK)

WGK 2

Ponto de fulgor (°F)

235.4 °F - closed cup

Ponto de fulgor (°C)

113 °C - closed cup

Equipamento de proteção individual

Faceshields, Gloves, Goggles, type ABEK (EN14387) respirator filter


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ACS applied materials & interfaces, 11(36), 33323-33335 (2019-08-30)
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Julia Kloeckner et al.
Bioconjugate chemistry, 17(5), 1339-1345 (2006-09-21)
Two biodegradable polycations based on hexanediol diacrylate linked oligoethylenimine (OEI) were synthesized by applying different reaction temperatures, 20 degrees C (LT-OEI-HD) and 60 degrees C (HT-OEI-HD). Their structural properties were analyzed by NMR, FTIR, and SEC/MALLS (size exclusion chromatography coupled
J R Nethercott et al.
British journal of industrial medicine, 40(3), 241-250 (1983-08-01)
Seven workers exposed to ultraviolet printing inks developed contact dermatitis. Six cases were allergic and one irritant. A urethane acrylate resin accounted for five cases of sensitisation, one of which was also sensitive to pentaerythritol triacrylate and another also to
Luca Ferrari et al.
Sensors (Basel, Switzerland), 13(1), 484-499 (2013-01-01)
The design, development and performance evaluation of a fluorescence-based pH sensor for on-line measurements is presented. The pKa of the sensing element has been calculated to be 7.9, thus the sensor is suitable for measurement of near neutral solutions. The
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Materials (Basel, Switzerland), 11(9) (2018-09-16)
This study demonstrates the usefulness of the lithography-based ceramic 3-dimensional printing technique with a specifically designed top-down process for the production of porous calcium phosphate (CaP) ceramic scaffolds with tailored pore orientations and mechanical properties. The processing parameters including the

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