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6378-65-0

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6378-65-0 Usage

Description

Hexyl hexanoate has a herbaceous odor. May be synthesized by passing n-hexyl alcohol over CuO + UO3 catalyst at 220 - 310°C, or by treating n-hexyl alcohol with Ca(Br03)2 and diluted aqueous HBr at 30°C.

Chemical Properties

Hexyl hexanoate has an herbaceous odor

Occurrence

Reported found in apple, apricot, banana, sweet cherry, orange peel oil, guava, grapes, melon, papaya, strawberry fruit and jam, tomato, Parmesan cheese, rum, cider, sherry, grape wine, black tea, passion fruit, plum, mushroom, starfruit, quince, cherimoya, mountain papaya, black choke cherry, spineless monkey orange, Chinese quince peel and hog plum (Spondias mombins L.)

Preparation

By passing n-hexyl alcohol over CuO + UO3 catalyst at 220 to 310°C, or by treating n-hexyl alcohol with Ca(BrO3)2 and diluted aqueous HBr at 30°C

Aroma threshold values

Detection: 6.4 ppm

Taste threshold values

Taste characteristics at 40 ppm: sweet, fruity and green with tropical notes.

Flammability and Explosibility

Notclassified

Check Digit Verification of cas no

The CAS Registry Mumber 6378-65-0 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 6,3,7 and 8 respectively; the second part has 2 digits, 6 and 5 respectively.
Calculate Digit Verification of CAS Registry Number 6378-65:
(6*6)+(5*3)+(4*7)+(3*8)+(2*6)+(1*5)=120
120 % 10 = 0
So 6378-65-0 is a valid CAS Registry Number.
InChI:InChI=1/C12H24O2/c1-3-5-7-9-11-14-12(13)10-8-6-4-2/h3-11H2,1-2H3

6378-65-0 Well-known Company Product Price

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  • Sigma-Aldrich

  • (18282)  Hexylhexanoate  analytical standard

  • 6378-65-0

  • 18282-1ML

  • 606.06CNY

  • Detail

6378-65-0SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 12, 2017

Revision Date: Aug 12, 2017

1.Identification

1.1 GHS Product identifier

Product name Hexyl hexanoate

1.2 Other means of identification

Product number -
Other names hexylhexanoate

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only. Food additives -> Flavoring Agents
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:6378-65-0 SDS

6378-65-0Relevant articles and documents

Solvent-free oxidation of straight-chain aliphatic primary alcohols by polymer-grafted vanadium complexes

Chaudhary, Nikita,Haldar, Chanchal,Kachhap, Payal

, (2021/12/02)

Oxidovanadium(IV) complexes [VO(tertacac)2] (1), [VO(dipd)2] (2), and [VO(phbd)2] (3) were synthesized by reacting [VO(acac)2] with 2,2,6,6-tetramethyl-3,5-hepatanedione, 1,3-diphenyl-1,3-propanedione, and 1-phenyl-1,3-butanedione, respectively. Imidazole-modified Merrifield resin was used for the heterogenization of complexes 1–3. During the process of heterogenization, the V4+ center in complex 2 converts into V5+, whereas the other two complexes 1 and 3 remain in the oxidovanadium(IV) state in the polymer matrix. Theoretically, calculated IPA values of 1–3 suggest that 2 is prone to oxidation compared with 1 and 3, which was also supported by the absence of EPR lines in 5. Polymer-supported complexes Ps-Im-[VIVO(tertacac)2] (4), Ps-Im-[VVO2(dipd)2] (5), and Ps-Im-[VIVO(phbd)2] (6) were applied for the solvent-free heterogenous oxidation of a series of straight-chain aliphatic alcohols in the presence of H2O2 at 60°C and showed excellent substrate conversion specially for the alcohols with fewer carbon atoms. Higher reaction temperature improves the substrate conversion significantly for the alcohols containing more carbon atoms such as 1-pentanol, 1-hexanol, and 1-heptanol while using optimized reaction conditions. However, alcohols with fewer carbon atoms seem less affected by reaction temperatures higher than the optimized temperature. A decreasing trend in the selectivity(%) of carboxylic acid was observed with increasing carbon atoms among the examined alcohols, whereas the selectivity towards aldehydes increased. The order of efficiency of the supported catalysts is 4 > 6 > 5 in terms of turnover frequency (TOF) values and substrate conversion, further supported by theoretical calculations.

Dehydrogenative alcohol coupling and one-pot cross metathesis/dehydrogenative coupling reactions of alcohols using Hoveyda-Grubbs catalysts

?zer, Halenur,Arslan, Dilan,?ztürk, Bengi ?zgün

, p. 5992 - 6000 (2021/04/12)

In this study,in situformed ruthenium hydride species that were generated from Grubbs type catalysts are used as efficient catalysts for dehydrogenative alcohol coupling and sequential cross-metathesis/dehydrogenative coupling reactions. The selectivity of Grubbs first generation catalysts (G1) in dehydrogenative alcohol coupling reactions can be tuned for the ester formation in the presence of weak bases, while the selectivity can be switched to the β-alkylated alcohol formation using strong bases. The performance of Hoveyda-Grubbs 2nd generation catalyst (HG2) was improved in the presence of tricyclohexylphosphine for the selective synthesis of ester derivatives with weak and strong bases in quantitative yields. Allyl alcohol was used as self and cross-metathesis substrate for the HG2 catalyzed sequential cross-metathesis/dehydrogenative alcohol coupling reactions to obtain γ-butyrolactone and long-chain ester derivatives in quantitative yields.

A robust NNP-type ruthenium (II) complex for alcohols dehydrogenation to esters and pyrroles

Chai, Huining,Zhang, Guangyao,Tan, Weiqiang,Ma, Jiping

, (2019/12/03)

A Ru (II) complex bearing pyridyl-based benzimidazole-phosphine tridentate NNP ligand was synthesized and structurally characterized by NMR, IR. The complex can efficiently and selectively catalyze the acceptorless dehydrogenation of primary alcohols to esters under relatively mild conditions and the synthesis of pyrroles by means of the reactions of secondary alcohols and β-amino alcohols through acceptorless deoxygenation condensation.

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