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About This Item
Linear Formula:
13CH3OH
CAS Number:
Molecular Weight:
33.03
UNSPSC Code:
12352200
NACRES:
NA.12
PubChem Substance ID:
MDL number:
Beilstein/REAXYS Number:
1697016
Isotopic purity:
99 atom % 13C
Assay:
99% (CP)
Mass shift:
M+1
Form:
liquid
assay
99% (CP)
form
liquid
InChI
1S/CH4O/c1-2/h2H,1H3/i1+1
SMILES string
[13CH3]O
InChI key
OKKJLVBELUTLKV-OUBTZVSYSA-N
isotopic purity
99 atom % 13C
technique(s)
NMR: suitable, bio NMR: suitable
Quality Level
bp
65.4 °C (lit.)
mp
-98 °C (lit.)
density
0.815 g/mL at 25 °C
format
neat
mass shift
M+1
storage temp.
room temp
Related Categories
General description
13CH3OH is isotopically enriched form of methyl alcohol.
Application
Methyl-13C alcohol is an external reference for the assignment of polymer constitution using nuclear magnetic resonance spectroscopy. It is used to study the proton transfer processes, which offering possibilities for the quantitative mechanism studies of proton-related catalytic reactions. This isotope-enrich solvent is used to confirm the distribution and arrangement of metals from metal organic frame work (MOF) using host-guest interaction study. Also used as trideuteromethylation reagent for the synthesis of deuterated drugs.
Packaging
This product may be available from bulk stock and can be packaged on demand. For information on pricing, availability and packaging, please contact Stable Isotopes Customer Service.
signalword
Danger
Hazard Classifications
Acute Tox. 3 Dermal - Acute Tox. 3 Inhalation - Acute Tox. 3 Oral - Flam. Liq. 2 - STOT SE 1
target_organs
Eyes,Central nervous system
Storage Class
3 - Flammable liquids
wgk
WGK 2
flash_point_f
51.8 °F - closed cup
flash_point_c
11.00 °C - closed cup
ppe
Eyeshields, Faceshields, Gloves, type ABEK (EN14387) respirator filter
Regulatory Information
危险化学品
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Xue Lu Wang et al.
Nature communications, 7, 11918-11918 (2016-06-18)
Proton transfer (PT) processes in solid-liquid phases play central roles throughout chemistry, biology and materials science. Identification of PT routes deep into the realistic catalytic process is experimentally challenging, thus leaving a gap in our understanding. Here we demonstrate an
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Optically pumped magnetometers (OPMs) based on alkali-atom vapors are ultra-sensitive devices for dc and low-frequency ac magnetic measurements. Here, in combination with fast-field-cycling hardware and high-resolution spectroscopic detection, we demonstrate applicability of OPMs in quantifying nuclear magnetic relaxation phenomena. Relaxation
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Utilising one-carbon substrates such as carbon dioxide, methane, and methanol is vital to address the current climate crisis. Methylotrophic metabolism enables growth and energy generation from methanol, providing an alternative to sugar fermentation. Saccharomyces cerevisiae is an important industrial microorganism
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