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395064

Sigma-Aldrich

Ethylamine solution

2.0 M in methanol

Synonym(s):

Aminoethane, Monoethylamine

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100 ML
$120.00
800 ML
$623.00

About This Item

Linear Formula:
C2H5NH2
CAS Number:
Molecular Weight:
45.08
Beilstein/REAXYS Number:
505933
MDL number:
UNSPSC Code:
12352100
PubChem Substance ID:
NACRES:
NA.22

$120.00


Available to ship onMay 01, 2025Details


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vapor pressure

10.07 psi ( 20 °C)
19.16 psi ( 55 °C)

Quality Level

form

liquid

concentration

2.0 M in methanol

density

0.81 g/mL at 20 °C
0.783 g/mL at 25 °C

functional group

amine

storage temp.

2-8°C

SMILES string

CCN

InChI

1S/C2H7N/c1-2-3/h2-3H2,1H3

InChI key

QUSNBJAOOMFDIB-UHFFFAOYSA-N

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General description

Ethylamine is an alkali. Ethylamine modified vermiculite (Ethyl-VER) was prepared, which was used to remove cesium from aqueous solution.[1] The oxidation of ethylamine on platinum single crystal electrodes in an acidic medium has been studied by cyclic voltammetry (CV) and Fourier transform infrared reflection-absorption spectroscopy (FT-IRRAS).[2]

Application

Ethylamine solution may be employed as reaction medium in the synthesis of large-scale flower-like CuS microspheres.[3]

signalword

Danger

Hazard Classifications

Acute Tox. 3 Dermal - Acute Tox. 3 Inhalation - Acute Tox. 3 Oral - Eye Dam. 1 - Flam. Liq. 2 - Skin Corr. 1B - STOT SE 1

target_organs

Eyes,Central nervous system

Storage Class

3 - Flammable liquids

wgk_germany

WGK 2

flash_point_f

48.2 °F - closed cup

flash_point_c

9 °C - closed cup

ppe

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


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Hang Long et al.
Journal of colloid and interface science, 428, 295-301 (2014-06-10)
Ethylamine modified vermiculite (Ethyl-VER) with high specific surface area and excellent pore structure was prepared to remove cesium from aqueous solution. The physic-chemical properties of the pristine and modified vermiculite were analyzed by X-ray diffraction (XRD), Fourier-transform infrared (FTIR), specific
Oxidation of methylamine and ethylamine on Pt single crystal electrodes in acid medium.
Huerta F, et al.
Journal of Electroanalytical Chemistry, 469(2), 159-169 (1999)
Self-assembly of CuS nanoflakes into flower-like microspheres: synthesis and characterization.
Shen X-P, et al.
Journal of Physics and Chemistry of Solids, 70(2), 422-427 (2009)
Stacey F Bent et al.
Proceedings of the National Academy of Sciences of the United States of America, 108(3), 956-960 (2010-11-12)
Surface functionalization of semiconductors has been the backbone of the newest developments in microelectronics, energy conversion, sensing device design, and many other fields of science and technology. Over a decade ago, the notion of viewing the surface itself as a
Riccardo Di Corato et al.
ACS nano, 5(2), 1109-1121 (2011-01-12)
Trifunctional polymer nanobeads are prepared by destabilization of a mixture of magnetic nanoparticles, quantum dots, and an amphiphilic polymer, followed by functionalization of the bead surface with folic acid molecules. The distribution of the nanoparticles within the nanobeads can be

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