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ChemicalBook >  Product Catalog >  Chemical Reagents >  Organic reagents >  Crown ether >  1,4,7,10,13-PENTAOXA-16-AZACYCLOOCTADECANE

1,4,7,10,13-PENTAOXA-16-AZACYCLOOCTADECANE

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1,4,7,10,13-PENTAOXA-16-AZACYCLOOCTADECANE Basic information

Product Name:
1,4,7,10,13-PENTAOXA-16-AZACYCLOOCTADECANE
Synonyms:
  • 1,4,7,10,13-PENTAOXA-16-AZACYCLOOCTADECANE
  • 1-AZA-18-CROWN-6
  • 1-AZA-18-CROWN 6-ETHER
  • AZA-18-CROWN-6
  • 1-Aza-4,7,10,13,16-pentaoxacyclooctadecane
  • 4,7,10,13,16-Pentaoxa-1-azacyclooctadecane
  • Aza-18-crown-6,98%
  • 1-Aza-18-crown-6 >=98.0% (NT)
CAS:
33941-15-0
MF:
C12H25NO5
MW:
263.33
EINECS:
251-751-8
Product Categories:
  • Azacrown Ethers
  • Crown Ethers
  • Functional Materials
  • Macrocycles for Host-Guest Chemistry
  • organic building block
Mol File:
33941-15-0.mol
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1,4,7,10,13-PENTAOXA-16-AZACYCLOOCTADECANE Chemical Properties

Melting point:
46-49 °C (lit.)
Boiling point:
406.57°C (rough estimate)
Density 
1.1122 (rough estimate)
refractive index 
1.4287 (estimate)
Flash point:
>230 °F
storage temp. 
Keep in dark place,Inert atmosphere,Room temperature
pka
8.69±0.20(Predicted)
form 
powder to crystaline
color 
White to Light yellow to Light orange
Water Solubility 
Insoluble in water.
Sensitive 
Air Sensitive
BRN 
1074079
CAS DataBase Reference
33941-15-0(CAS DataBase Reference)
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Safety Information

Hazard Codes 
Xi
Risk Statements 
36/37/38
Safety Statements 
26-36
WGK Germany 
3
3-10
HS Code 
29349990

MSDS

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1,4,7,10,13-PENTAOXA-16-AZACYCLOOCTADECANE Usage And Synthesis

Chemical Properties

white to light yellow crystals or crystalline mass

Uses

1-Aza-18-crown-6 is used as building block for the synthesis of bis-crown ethers, lariat ethers and other monofunctionalized macrocycles. It is also used as pharmaceutical intermediate.

Synthesis

37860-51-8

111-42-2

33941-15-0

To a 3L three-necked round-bottomed flask was sequentially added a magnetic stirrer, 1.50 L of tert-butanol (tBuOH) and potassium tert-butanol (KOtBu, 30.7 g, 274 mmol). The mixture was heated to 40 °C with continuous stirring for 30 min to ensure complete dissolution of KOtBu. Subsequently, tetraethylene glycol di-p-toluenesulfonate (46 g, 91.5 mmol, dissolved in 100 mL of dioxane) and diethanolamine (9.6 g, 91.3 mmol, dissolved in 100 mL of tBuOH), respectively, were slowly added dropwise to the reaction system over a period of 2 hours through two different dropping funnels. Note: The rate of titration has a significant effect on the reaction yield, and slow titration helps to increase the yield. After dropwise addition, the reaction mixture was continued to be stirred for 1 hour and subsequently cooled to room temperature. The reaction mixture was filtered through a Brinell funnel and the solvent was removed by rotary evaporator. To the residual brown viscous mass was added 100 mL of deionized water and extracted first with hexane (1 x 60 mL, discarding the hexane phase) and then with dichloromethane (CH2Cl2, 5 x 60 mL). The dichloromethane phases were combined, dried with anhydrous magnesium sulfate (MgSO4) and the solvent was again removed by rotary evaporator. The resulting dark brown residue was distilled under high vacuum through a ball-bulb distillation apparatus using a hot air gun for assisted heating, resulting in the colorless liquid-like product az-18-crown ether-6 (8.4 g, 35% yield). The nuclear magnetic resonance (NMR) spectrum of the product was consistent with the data reported in the literature. It was found that the tBuOH used in the reaction could be recovered by distillation and used in the subsequent synthesis of aza-crown ether even though it contained a small amount of dioxane (<5%).

References

[1] Bulletin of the Chemical Society of Japan, 1983, vol. 56, # 1, p. 212 - 218
[2] Polyhedron, 2018, vol. 141, p. 385 - 392
[3] Phosphorus, Sulfur and Silicon and the Related Elements, 2006, vol. 181, # 1, p. 219 - 225
[4] Journal of the Chemical Society, Chemical Communications, 1981, # 10, p. 471 - 472

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