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1(3H)-Isobenzofuranone, 3-ethylidene-, (E)- is a chemical compound belonging to the isobenzofuranone class, characterized by its unique structure and properties. 1(3H)-Isobenzofuranone, 3-ethylidene-, (E)- is an organic molecule with a molecular formula of C9H8O2, indicating the presence of nine carbon atoms, eight hydrogen atoms, and two oxygen atoms. The compound features a 3-ethylidene group, which is a vinyl group (C=C-CH3) attached to the isobenzofuranone core. The (E)- configuration signifies that the double bond in the molecule has a trans arrangement, which influences its physical and chemical properties. 1(3H)-Isobenzofuranone, 3-ethylidene-, (E)- has potential applications in various fields, such as pharmaceuticals, agrochemicals, and materials science, due to its unique structure and reactivity.

4767-63-9

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4767-63-9 Usage

Appearance

Yellow, crystalline substance

Explanation

The compound has a yellow color and forms a crystalline structure, which means it has a well-ordered, repeating arrangement of atoms.

Explanation

The compound has a pleasant, sweet, and floral scent, making it suitable for use in perfumes and fragrances.

Explanation

Due to its pleasant odor, 1(3H)-Isobenzofuranone, 3-ethylidene-, (E)is commonly used in the production of perfumes, fragrances, and various flavoring agents for the food and beverage industry.

Explanation

The compound has been found to have potential antioxidant properties, which means it may help protect cells from damage caused by free radicals.

Explanation

Studies are being conducted to explore the potential use of 1(3H)-Isobenzofuranone, 3-ethylidene-, (E)as a treatment for certain medical conditions, including cancer and neurodegenerative diseases, due to its various biological activities.

Explanation

The compound exists as an (E)isomer, which refers to the spatial arrangement of its atoms. The (E)configuration indicates that the substituents on the double bond are on opposite sides of the molecule, following the Cahn-Ingold-Prelog priority rules.

Odor

Sweet, floral

Applications

Perfumes, fragrances, flavoring agents

Antioxidant properties

Potential antioxidant activity

Antimicrobial properties

Potential antimicrobial activity

Medical research

Potential treatment for cancer and neurodegenerative diseases

Stereochemistry

(E)isomer

Check Digit Verification of cas no

The CAS Registry Mumber 4767-63-9 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 4,7,6 and 7 respectively; the second part has 2 digits, 6 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 4767-63:
(6*4)+(5*7)+(4*6)+(3*7)+(2*6)+(1*3)=119
119 % 10 = 9
So 4767-63-9 is a valid CAS Registry Number.

4767-63-9Downstream Products

4767-63-9Relevant academic research and scientific papers

Palladium-catalyzed carbonylative cyclization of 1-iodo-2-alkenylbenzenes

Negishi, Ei-Ichi,Copéret, Christophe,Ma, Shengming,Mita, Takeshi,Sugihara, Takumichi,Tour, James M.

, p. 5904 - 5918 (2007/10/03)

The Pd-catalyzed carbonylation of ω-vinyl-substituted o-iodoalkenylbenzenes 1-4 can provide up to modest yields (50-60%) of 5- and 6-membered Type I cyclic acylpalladation products, i.e., α,β-unsaturated cyclic ketones, in the absence of an external nucleophile and high yields of 5- and 6-membered Type II cyclic acylpalladation products, i.e., α- or β-((alkoxycarbonyl)methyl)substituted cyclic ketones in the presence of an alcohol, e.g., MeOH. In cases where no such processes are available, other side reactions, such as cyclic carbopalladation, polymeric acylpalladation, and trapping of acylpalladiums via esterification and other processes may become predominant. Neither smaller, i.e., 3- or 4-membered, nor 7-membered or larger cyclic ketones appear to be accessible by the reaction. In most cases, the exo-mode cyclic acylpalladation takes place exclusively. However, the cyclic acylpalladation of 3 proceeds exclusively via endo-mode cyclization to give 5-membered ketones. Substitution of one or more hydrogens in the ω-vinyl group with carbon groups has significant effects on the reaction course. Those substrates containing a 1,2-disubstituted alkenyl group in place of a vinyl group, i.e., 19-22 and 24 excluding 25, can give monomeric cyclic acylpalladation products in high yields. These results represent a major deviation from those obtained with 1 and 2. In the absence of an external nucleophile, formation of Type I cyclic acylpalladation products is, in some cases, accompanied by Type III cyclic acylpalladation involving trapping of acylpalladiums by internal enolates. In the presence of MeOH or other alcohols, Type II acylpalladation products have been obtained in respectable yields from 19-20, 23, and 24. In the presence of an alcohol, premature esterification can be a serious side reaction. However, this problem can be alleviated using i-PrOH or t-BuOH in place of MeOH in combination with appropriate solvents, typically those of lower polarity. Heteroatom-containing substituents on the ω-vinyl groups also exert significant effects on cyclic acylpalladation. Electron-donating substituents tend to lead to high yields of cyclic acylpalladation products, while electron-withdrawing alkoxycarbonyl groups conjugated with the ω-alkenyl group tend to give lower yields of cyclic acylpalladation products. With Me3Si and alkoxycarbonyl groups products of apparent endo-mode cyclic acylpalladation, i.e., naphthols, have been obtained in significant yields (25-50%). Free OH and other nucleophilic heteroatom groups can seriously interfere with cyclic acylpalladation, and they must be appropriately protected in most cases, although there are indications that acylpalladation-lactonization tandem processes similar to Type II cyclic acylpalladation might be developed.

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