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(E)-3,8-Nonadien-2-one, also known as myristica ketone, is a chemical compound characterized by its molecular formula C9H14O. It features an unsaturated ketone structure with a ten-carbon chain and double bonds at the third and fourth carbon positions. (E)-3,8-Nonadien-2-one is naturally derived from sources such as nutmeg and mace, and it is recognized for its distinct spicy, woody, and slightly floral aroma.

55282-90-1

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55282-90-1 Usage

Uses

Used in the Food Industry:
(E)-3,8-Nonadien-2-one is used as a flavoring agent for its unique spicy, woody, and slightly floral aroma, enhancing the taste and scent of various food products.
Used in Perfumes and Cosmetics:
In the fragrance industry, (E)-3,8-Nonadien-2-one is utilized as an ingredient in perfumes and cosmetics, where its distinctive aroma contributes to the creation of complex and appealing scents.
Used in Pharmaceutical Applications:
Due to its antimicrobial and antioxidant properties, (E)-3,8-Nonadien-2-one holds potential for various pharmacological applications, which may include the development of new treatments or therapies.

Check Digit Verification of cas no

The CAS Registry Mumber 55282-90-1 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 5,5,2,8 and 2 respectively; the second part has 2 digits, 9 and 0 respectively.
Calculate Digit Verification of CAS Registry Number 55282-90:
(7*5)+(6*5)+(5*2)+(4*8)+(3*2)+(2*9)+(1*0)=131
131 % 10 = 1
So 55282-90-1 is a valid CAS Registry Number.
InChI:InChI=1/C9H14O/c1-3-4-5-6-7-8-9(2)10/h3,7-8H,1,4-6H2,2H3/b8-7+

55282-90-1SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 14, 2017

Revision Date: Aug 14, 2017

1.Identification

1.1 GHS Product identifier

Product name (3E)-nona-3,8-dien-2-one

1.2 Other means of identification

Product number -
Other names 3,8-Nonadien-2-one,(E)

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:55282-90-1 SDS

55282-90-1Relevant academic research and scientific papers

Organomediated Morita-Baylis-Hillman cyclization reactions

Krafft, Marie E.,Haxell, Thomas F. N.

, p. 10168 - 10169 (2007/10/03)

We have developed the Morita-Baylis-Hillman reaction to include, for the first time in a completely organomediated process, intramolecular examples bearing allylic leaving groups as the electrophilic partner providing a facile, high yielding, straightforw

Designing photosystems for harvesting photons into electrons by sequential electron-transfer processes: Reversing the reactivity profiles of α,β-unsaturated ketones as carbon radical precursor by one electron reductive β-activation

Pandey, Ganesh,Hajra, Saumen,Ghorai, Manas K.,Kumar, K. Ravi

, p. 8777 - 8787 (2007/10/03)

Two photosystems are developed to harvest visible-light photons into electrons via sequential electron transfer processes. Photosystem-A (PS-A) consisted of DCA as light harvesting electron acceptor and Ph3P as sacrificial electron donor, whereas photosystem-B (PS-B) employed DCA as usual electron acceptor, DMN as a primary electron donor, and ascorbic acid as a secondary and sacrificial electron donor. α,β-Unsaturated ketones are utilized as secondary electron accepters. The design of these photosystems is based on the thermodynamic feasibility of electron transfer between each participating components. Electron transfer from DCA.- to α,β-unsaturated ketones leads to their β-activation as carbon centered radicals which cyclizes efficiently to tethered activated olefins. Cyclization with a nonactivated olefin is found to be moderate. The cyclization stereochemistries have been illustrated by studying the PET activation of 5 and 21. The exclusive trans-stereochemistry observed in 8 is explained by considering the thermodynamic equilibration of initially formed syn-intermediate 10 from 5. The isolation of trace amount of 9 in this reaction substantiates the syn-intermediacy as primary intermediate which is further confirmed by the isolation of 25 from 21. Formation of 25 suggests that wherever the syn-intermediate is thermodynamically more stable, it invariably undergoes further cyclization to geometrically well-placed enolate double bond. An interesting observation is made by isolating 9 as a major product from the PET activation of 5 using PS-B. Stabilization of 10 by ascorbic acid is suggested to be the plausible explanation for this unusual observation. Radicals produced by the reductive β-activation of α,β-unsaturated ketones follow well established radical cyclization rules which is exemplified by studying the reactions of 39 and 40. Generality of these cyclizations is demonstrated from the PET reactions of 29-32. Synthesis of 49, an important structural framework of biologically active angularly fused triquinanes, from 48 is included in this study to demonstrate the varied applicability of this strategy.

REACTIONS OF ENYNES WITH ADSORBED METAL-CARBENES

Katz, Thomas J.,Yang, Ginger Xu-Quiang

, p. 5895 - 5898 (2007/10/02)

Adsorbed on silica-gel or on other adsorbants (MgSO4, Na2SO4, or Na2CO3), but not in homogeneous solution, pentacarbonyl(methoxyethylidene)chromium combines with simple enynes to give bicyclohexanes.The method's usefulness is illustrated by the synthesis of a variaty of previously unknown structures from simple hydrocarbons, ethers, and amines.

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