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7386-24-5

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7386-24-5 Usage

Description

Cyclodecyl acetate is a chemical compound that serves as a primary fragrance ingredient in a variety of personal care and household products. It is characterized by its clear, colorless appearance and a floral-like odor, which makes it a popular additive in perfumes, colognes, and lotions to provide a fresh and pleasant scent. cyclodecyl acetate is also recognized for its ability to enhance the longevity of other fragrance ingredients, thereby improving the overall scent experience for consumers.

Uses

Used in Fragrance Industry:
Cyclodecyl acetate is used as a fragrance ingredient for its floral-like odor, which imparts a fresh and pleasant scent to perfumes, colognes, and lotions.
Used in Personal Care Products:
In personal care products, cyclodecyl acetate is used as a scent enhancer to improve the overall fragrance profile and ensure a longer-lasting scent experience for consumers.
Used in Household Products:
Cyclodecyl acetate is used in the manufacturing of soaps, detergents, and air fresheners as a fragrance component, contributing to the overall scent profile of these products.
Used in Fragrance Stabilization:
Due to its potential to enhance the lasting power of other fragrance ingredients, cyclodecyl acetate is used in the fragrance industry to improve the stability and longevity of scents in various products.
Safety Note:
Despite its widespread use in enhancing fragrances, cyclodecyl acetate should be handled and stored with care, as it can be harmful if ingested or inhaled in large quantities.

Check Digit Verification of cas no

The CAS Registry Mumber 7386-24-5 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 7,3,8 and 6 respectively; the second part has 2 digits, 2 and 4 respectively.
Calculate Digit Verification of CAS Registry Number 7386-24:
(6*7)+(5*3)+(4*8)+(3*6)+(2*2)+(1*4)=115
115 % 10 = 5
So 7386-24-5 is a valid CAS Registry Number.

7386-24-5SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 13, 2017

Revision Date: Aug 13, 2017

1.Identification

1.1 GHS Product identifier

Product name Cyclodecyl acetate

1.2 Other means of identification

Product number -
Other names -

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
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:7386-24-5 SDS

7386-24-5Relevant articles and documents

Conformational study of cyclodecane and substituted cyclodecanes by dynamic NMR spectroscopy and computational methods

Pawar, Diwakar M.,Smith, Sumona V.,Mark, Hugh L.,Odom, Rhonda M.,Noe, Eric A.

, p. 10715 - 10720 (1998)

Low-temperature 13C NMR spectra of cyclodecane (1) showed the presence of a minor conformation, assigned to the twist-boat-chair-chair (TBCC), in addition to the expected boat-chair-boat (BCB). If only the TBCC and BCB conformations were assumed to be appreciably populated, then a free-energy difference between the two conformations of 0.73 ± 0.3 kcal/mol could be obtained from the five area measurements over a temperature range of -148.6 to -131.0 °C, with populations of 5.2 and 94.8% for the TBCC and BCB conformations at -146.1 °C. However, an alternative description of the conformations of 1 was suggested by the ab initio calculations, which predicted that the twist-boat-chair (TBC) and TBCC conformations have comparable free energies and populations. Equal amounts of TBCC and TBC would give populations of 5.2, 5.2, and 89.6% and relative free energies of 0.72, 0.72, and 0.00 kcal/mol for the TBCC, TBC, and BCB conformations at -146.1 °C, based on the experimental areas at this temperature. The experimental spectra could neither confirm nor disprove the presence of the TBC. Saunders' calculations of the strain energies of 1 using Allinger's MM3 program were reproduced to obtain a complete set of these parameters and drawings of the conformations, and free energies and populations were obtained at +25 and - 171.1 °C. Free energies were also calculated at the HF/6-31G* and HF/6- 311G* levels, and chemical shifts were obtained for three conformations at the HF/6-311G* level by the GIAO method. Chlorocyclodecane (2) was shown by 13C and 1H NMR spectroscopy to have three conformations at -165.5 °C. To aid in conformational assignments, the 13C chemical shifts were calculated for all of the BCB and TBCC conformations of 2 using the GIAO method at the HF/6-311G* level. The free energies for each of the possible BCB, TBCC, and TBC conformations were also calculated using Allinger's MM3 program. From the line shape changes in the experimental 13C NMR spectra, the free-energy barriers, a consideration of the X-ray structures of substituted cyclodecanes, and these calculated chemical shifts and free energies, the three conformations of 2 at -165.5 °C were suggested to be 2e BCB (31.2%), 2a BCB (14.9%), and a TBCC conformation (53.9%) (numbering as in Figure 1); the 2e and 2a BCB assignments could be reversed. Free-energy barriers for interconversion of BCB conformations of 2 at -159.8 °C were 5.4 ± 0.2 and 5.5 ± 0.2 kcal/mol, and the free-energy barriers at -120.9 °C for equilibration of the TBCC conformation with the rapidly interconverting BCB conformations were 7.07 ± 0.2 and 7.08 ± 0.2 kcal/mol. The 13C NMR spectrum of cyclodecyl acetate (3) at -160.0 °C showed a similar pattern of chemical shifts and intensities for the substituted ring carbon.

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