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Cis-2-phenyl-5-O-acetyl-1,3-dioxane is a complex organic chemical compound with the molecular formula C12H12O4. It is a derivative of 1,3-dioxane, featuring a phenyl group at the 2nd position and an acetyl group at the 5th position. cis-2-phenyl-5-O-acetyl-1,3-dioxane is characterized by its cis-configuration, which refers to the spatial arrangement of the phenyl and acetyl groups on the same side of the 1,3-dioxane ring. It is a colorless to pale yellow solid and is soluble in organic solvents. Cis-2-phenyl-5-O-acetyl-1,3-dioxane is synthesized through various chemical reactions and is used in the pharmaceutical and chemical industries for the production of various compounds. Its unique structure and properties make it a valuable intermediate in the synthesis of complex organic molecules.

4141-23-5

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4141-23-5 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 4141-23-5 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 4,1,4 and 1 respectively; the second part has 2 digits, 2 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 4141-23:
(6*4)+(5*1)+(4*4)+(3*1)+(2*2)+(1*3)=55
55 % 10 = 5
So 4141-23-5 is a valid CAS Registry Number.

4141-23-5Relevant academic research and scientific papers

Conformational Analysis of 5-Substituted 1,3-Dioxanes. 7. Effect of Lithium Bromide Addition

Juaristi, Eusebio,Díaz, Francisco,Cuéllar, Geiser,Jiménez-Vázquez, Hugo A.

, p. 4029 - 4035 (2007/10/03)

The position of equilibria, established by means of BF3, between diastereomeric cis- and trans-5- substituted-2-phenyl-1,3-dioxanes, in solvents THF and CHCl3, and in the presence of 0, 1, and 10 equiv of LiBr has been determined. The observed ΔG° values show that the addition of salt to the reaction medium influences the position of equilibrium. Lithium bromide effects on the conformational behavior are discussed in terms of lithium ion complexation events that lead to increased stability of the axial isomers when the substituent at C(5) is CO2H, CO2CH3, CONHCH3, and CH2- OH. By contrast, disruption of the intramolecular hydrogen bond present in the axial 5-acetamido derivative (cis-9 substituent equal to NHCOCH3) modifies the preference for the axial conformation in salt-free 9 to a net dominance of the equatorial isomer in the presence of LiBr. Interpretation of the experimental observations was based on models that are apparently supported by semiempirical AM1 calculations. The results derived from the present study contribute to our understanding of the processes involved in molecular recognition and may model salt effects in physiological events.

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