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The chemical compound "(C4H9)3SnC6H4-p-I" is a triorganotin compound, where three butyl groups (C4H9) are attached to a tin (Sn) atom, which in turn is bonded to a para-iodobenzene (C6H4-p-I) group. This type of compound is known for its potential applications in various fields, including as a catalyst, a stabilizer for polymers, or in the production of certain types of materials. The presence of the iodine atom in the para position of the benzene ring suggests that it may have specific reactivity or properties that could be exploited in chemical reactions or industrial processes. The structure of the compound is characterized by the central tin atom surrounded by three alkyl groups and a halogenated aromatic ring, which can influence its physical and chemical properties.

17151-50-7

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17151-50-7 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 17151-50-7 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,7,1,5 and 1 respectively; the second part has 2 digits, 5 and 0 respectively.
Calculate Digit Verification of CAS Registry Number 17151-50:
(7*1)+(6*7)+(5*1)+(4*5)+(3*1)+(2*5)+(1*0)=87
87 % 10 = 7
So 17151-50-7 is a valid CAS Registry Number.

17151-50-7Relevant academic research and scientific papers

Synthesis of Long-Chain Alkanoyl Benzenes by an Aluminum(III) Chloride-Catalyzed Destannylative Acylation Reaction

Roemer, Max,Keaveney, Sinead T.,Proschogo, Nicholas

, p. 9007 - 9022 (2021)

This paper describes the facile synthesis of haloaryl compounds with long-chain alkanoyl substituents by the destannylative acylation of haloaryls bearing tri-n-butyltin (Bu3Sn) substituents. The method allows the synthesis of many important synthons for novel functional materials in a highly efficient manner. The halo-tri-n-butyltin benzenes are obtained by the lithium-halogen exchange of commercially available bis-haloarenes and the subsequent reaction with Bu3SnCl. Under typical Friedel-Crafts conditions, i.e., the presence of an acid chloride and AlCl3, the haloaryls are acylated through destannylation. The reactions proceed fast (5 min) at low temperatures and thus are compatible with aromatic halogen substituents. Furthermore, the method is applicable topara-,meta-, andortho-substitution and larger systems, as demonstrated for biphenyls. The generated tin byproducts were efficiently removed by trapping with silica/KF filtration, and most long-chain haloaryls were obtained chromatography-free. Molecular structures of several products were determined by X-ray single-crystal diffraction, and the crystal packing was investigated by mapping Hirshfeld surfaces onto individual molecules. A feasible reaction mechanism for the destannylative acylation reaction is proposed and supported through density functional theory (DFT) calculations. DFT results in combination with NMR-scale control experiments unambiguously demonstrate the importance of the tin substituent as a leaving group, which enables the acylation.

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