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1,3-Butadien-1-one, 4-phenyl-, (3Z)- is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

477775-84-1

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477775-84-1 Usage

Physical state

Yellow solid

Odor

Sweet, fruity

Usage

a. Synthesis of heterocyclic compounds and pharmaceuticals
b. Flavoring agent in food and beverage industry
c. Precursor for natural product production

Potential applications

Anti-cancer agent (inhibits cancer cell proliferation)

Safety precautions

a. Flammable
b. Causes skin and eye irritation upon contact

Chemical structure

1,3-Butadien-1-one, 4-phenyl-, (3Z)indicates the presence of a butadienone core with a phenyl group at the 4-position and a (3Z)geometric isomer configuration.

Check Digit Verification of cas no

The CAS Registry Mumber 477775-84-1 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 4,7,7,7,7 and 5 respectively; the second part has 2 digits, 8 and 4 respectively.
Calculate Digit Verification of CAS Registry Number 477775-84:
(8*4)+(7*7)+(6*7)+(5*7)+(4*7)+(3*5)+(2*8)+(1*4)=221
221 % 10 = 1
So 477775-84-1 is a valid CAS Registry Number.

477775-84-1Upstream product

477775-84-1Downstream Products

477775-84-1Relevant academic research and scientific papers

Spectroscopy and absolute reactivity of ketenes in acetonitrile studied by laser flash photolysis with time-resolved infrared detection

Wagner, Brian D.,Arnold, Bradley R.,Brown, Gerald S.,Lusztyk, Janusz

, p. 1827 - 1834 (1998)

Laser flash photolysis with time-resolved infrared detection of transients (LFP-TRIR) has been used to study the IR spectroscopy and reactivity of a number of substituted ketenes, prepared by the 308-nm photolysis of α-diazocarbonyl precursors in acetonitrile solution at room temperature. The correlation of the experimental ketene asymmetric stretching frequency to the Swain-Lupton field (F) and resonance (R) effect substituent parameters was unsatisfactory, whereas the correlation to the inductive substituent parameter (σ1) of Charton gave excellent results. This suggests that the asymmetric stretching frequency of substituted ketenes depends mainly on the inductive (i.e., field) effect of the substituents. The mechanism and kinetics of the reactions of these ketenes with various amines in acetonitrile were also studied. An intermediate species identified as either zwitterionic ylide or amide enol formed in the nucleophilic addition of the secondary amine to the C(α) of the ketene is observed by TRIR. The decay of this species is assisted by the amine and is concomitant with the formation of an amide, the final product of the reaction. Our kinetic data on ketene amine reactions show a general trend, indicating a much higher reactivity (ca. 3 orders of magnitude difference in the corresponding rate constants) of secondary amines compared with that of tertiary amines. Secondary diethylamine shows reactivity similar to those observed for primary amines, while secondary piperidine seems to be, in general, somewhat more reactive. The observed trend is rationalized in terms of the steric effects exerted by both amine and ketene substituents. Our data on para-substituted phenyl ketenes provide support for the negative charge development on the ketene moiety in the transition state, with electron-withdrawing substituents accelerating and electron-releasing substituents slowing down the addition reaction.

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