Pular para o conteúdo
Merck
Todas as fotos(3)

Documentos Principais

134457

Sigma-Aldrich

Docosane

99%

Sinônimo(s):

n-Docosane

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About This Item

Fórmula linear:
CH3(CH2)20CH3
Número CAS:
Peso molecular:
310.60
Beilstein:
1702206
Número CE:
Número MDL:
Código UNSPSC:
12352100
ID de substância PubChem:
NACRES:
NA.22

densidade de vapor

10.8 (vs air)

Nível de qualidade

pressão de vapor

<1 mmHg ( 21.1 °C)

Ensaio

99%

forma

solid

pb

369 °C (lit.)

pf

42-45 °C (lit.)

densidade

0.778 g/mL at 25 °C (lit.)

cadeia de caracteres SMILES

CCCCCCCCCCCCCCCCCCCCCC

InChI

1S/C22H46/c1-3-5-7-9-11-13-15-17-19-21-22-20-18-16-14-12-10-8-6-4-2/h3-22H2,1-2H3

chave InChI

HOWGUJZVBDQJKV-UHFFFAOYSA-N

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Aplicação

Docosane was used to investigate commercially available waxes in the form of thin disc samples as possible diffraction intensity standards for macromolecular crystallography synchrotron beamlines.

Código de classe de armazenamento

11 - Combustible Solids

Classe de risco de água (WGK)

WGK 3

Ponto de fulgor (°F)

235.4 °F - closed cup

Ponto de fulgor (°C)

113 °C - closed cup

Equipamento de proteção individual

dust mask type N95 (US), Eyeshields, Gloves


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Heptacosane &#8805;98.0% (GC)

Sigma-Aldrich

51560

Heptacosane

Triacontane 98%

Sigma-Aldrich

263842

Triacontane

Nonadecane 99%

Sigma-Aldrich

N28906

Nonadecane

Heptacosane analytical standard

Supelco

51559

Heptacosane

n-Eicosane for synthesis

Sigma-Aldrich

8.20547

n-Eicosane

Nonacosane 99%

Sigma-Aldrich

284246

Nonacosane

Octacosane analytical standard

Supelco

74684

Octacosane

J Brandao-Neto et al.
Journal of synchrotron radiation, 17(1), 53-60 (2009-12-24)
A number of commercially available waxes in the form of thin disc samples have been investigated as possible diffraction intensity standards for macromolecular crystallography synchrotron beamlines. Synchrotron X-ray powder diffraction measurements show that beeswax offers the best performance of these
Cédric Pisani et al.
Nanoscale, 9(5), 1840-1851 (2016-11-20)
Magnetic mesoporous silica nanoparticles (M-MSNs) represent promising targeting tools for theranostics. Engineering the interaction of nanoparticles (NPs) with biological systems requires an understanding of protein corona formation around the nanoparticles as this drives the biological fate of nanocarriers. We investigated
Hussein Awada et al.
ACS applied materials & interfaces, 11(9), 9519-9529 (2019-02-08)
Composites combining superparamagnetic iron oxide nanoparticles (SPIONs) and polymers are largely present in modern (bio)materials. However, although SPIONs embedded in polymer matrices are classically reported, the mechanical and degradation properties of the polymer scaffold are impacted by the SPIONs. Therefore
Cédric Pisani et al.
Nanotoxicology, 11(7), 871-890 (2017-09-25)
Magnetic mesoporous silica nanoparticles (M-MSNs) are a promising class of nanoparticles for drug delivery. However, a deep understanding of the toxicological mechanisms of action of these nanocarriers is essential, especially in the liver. The potential toxicity on HepaRG cells of
Carlos F Torres et al.
Biotechnology and bioengineering, 78(5), 509-516 (2002-07-13)
The effect of the water content on the lipase-catalyzed (Candida rugosa) interesterification (acidolysis) of menhaden oil with conjugated linoleic acid was studied for amounts of added water ranging from 0-4% (w/w). The rate of the acidolysis reaction increased with increasing

Protocolos

Separation of Decane; Dodecane; Tetradecane; Hexadecane; Octadecane; Eicosane; Docosane; Tetracosane; Hexacosane; Octacosane

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