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Merck
CN

33233

六亚甲基四胺

≥99.5% (calc. to the dried substance), solid, puriss. p.a., reag. Ph. Eur.

别名:

1,3,5,7-四氮杂三环[3.3.1.13,7]癸烷, 乌洛托品, 六亚甲基四胺

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关于此项目

经验公式(希尔记法):
C6H12N4
化学文摘社编号:
分子量:
140.19
NACRES:
NA.21
PubChem Substance ID:
UNSPSC Code:
12352100
EC Number:
202-905-8
MDL number:
Beilstein/REAXYS Number:
2018
Assay:
≥99.5% (calc. to the dried substance)
Form:
solid
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产品名称

六亚甲基四胺, puriss. p.a., reag. Ph. Eur., ≥99.5% (calc. to the dried substance)

InChI key

VKYKSIONXSXAKP-UHFFFAOYSA-N

InChI

1S/C6H12N4/c1-7-2-9-4-8(1)5-10(3-7)6-9/h1-6H2

SMILES string

C1N2CN3CN1CN(C2)C3

agency

USP/NF, reag. Ph. Eur.

vapor pressure

<0.01 mmHg ( 20 °C)

grade

puriss. p.a.

assay

≥99.5% (calc. to the dried substance)

form

solid

autoignition temp.

770 °F

impurities

≤0.001% heavy metals (as Pb), ≤0.01% ammonium (NH4)

ign. residue

≤0.01% (as SO4)

pH

8.5-9.5 (20 °C, 10%)

mp

280 °C (subl.) (lit.)

solubility

H2O: soluble

anion traces

chloride (Cl-): ≤20 mg/kg, sulfate (SO42-): ≤50 mg/kg

Quality Level

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General description

六亚甲基四胺是一种六胺。它参与Duff反应,以合成羟基苯甲醛衍生物。

Application

六亚甲基四胺可以用作反应试剂,通过分别与水杨酸和β-萘酚反应,然后用HCl处理(水解),合成3和5-醛基-水杨酸以及2-羟基萘醛。 它可用于合成酚醛。 它可以用作甲酰化试剂,用于合成各种醛。
它已被用于通过沉淀法制备二氧化铈纳米颗粒。

pictograms

FlameExclamation mark

signalword

Warning

hcodes

Hazard Classifications

Flam. Sol. 2 - Skin Sens. 1B

存储类别

4.1B - Flammable solid hazardous materials

wgk

WGK 1

flash_point_f

482.0 °F - closed cup

flash_point_c

250 °C - closed cup

ppe

Eyeshields, Faceshields, Gloves, type P3 (EN 143) respirator cartridges

法规信息

危险化学品
易制爆化学品
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分析证书(COA)

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96. A new general method for the preparation of o-hydroxyaldehydes from phenols and hexamethylenetetramine.
Duff JC.
Journal of the Chemical Society, 547-550 (1941)
Formylation of aromatic compounds with hexamethylenetetramine and trifluoroacetic acid.
Smith WE.
The Journal of Organic Chemistry, 37(24), 3972-3973 (1972)
Degradation mitigation in polymer electrolyte membranes using cerium oxide as a regenerative free-radical scavenger.
Trogadas P, et al.
Electrochemical and Solid-State Letters, 11(7), B113-B116 (2008)
Hong Yu et al.
Nanoscale, 6(18), 10556-10561 (2014-08-15)
Ternary metal oxides have been receiving wide attention in electrochemical energy storage due to their rich redox reactions and tuneable conductivity. We present a simple solution-based method to prepare a 3D interconnected porous network of ternary metal oxide (CoMoO₄ and
Vincent Consonni et al.
ACS nano, 8(5), 4761-4770 (2014-04-12)
Controlling the polarity of ZnO nanowires in addition to the uniformity of their structural morphology in terms of position, vertical alignment, length, diameter, and period is still a technological and fundamental challenge for real-world device integration. In order to tackle

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