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7-(4'-methylphenylazo)-8-hydroxyquinoline-5-sulfonic acid is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

17809-13-1

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17809-13-1 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 17809-13-1 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,7,8,0 and 9 respectively; the second part has 2 digits, 1 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 17809-13:
(7*1)+(6*7)+(5*8)+(4*0)+(3*9)+(2*1)+(1*3)=121
121 % 10 = 1
So 17809-13-1 is a valid CAS Registry Number.

17809-13-1Downstream Products

17809-13-1Relevant articles and documents

Supramolecular structure and substituents effect on the spectral studies of dioxouranium(VI) azodyes complexes

Diab,El-Bindary,El-Sonbati,Salem

, p. 11 - 19 (2012)

The synthesis of several coordination azo compounds of dioxouranium(VI) heterochelates with bidentate azo compounds derived from 4-alkylphenylazo-5- sulfo-8-hydroxyquinoline (HLn) ligands, are described. The ligands and structural composition of azo complexes were confirmed and characterized by various physico-chemical techniques. The bonding sites of the azo compounds are deduced from IR and 1H NMR spectra and the ligands were found to bond to the UO22+ ion in a bidentate fashion. The ligands obtained contain NN and phenolic functional groups in different positions with respect to the quinoline group. IR spectra show that the azo compounds (HLn) acts as a monobasic bidentate ligand by coordinating via the azo nitrogen atom of azodye (NN) and oxygen atom of the phenolic group forming thereby a six-membered chelating ring and concomitant formation of an intramolecular hydrogen bond. The υ3 frequency of UO22+ has been shown to be an excellent molecular probe for studying the coordinating power of the ligands. The values of υ3 of the prepared complexes containing UO22+ were successfully used to calculate the force constant, FUO (1n 10 -8 N/) and the bond length RUO (in ) of the UO bond. A strategy based upon both theoretical and experimental investigations has been adopted. The theoretical aspects are described in terms of the well-known theory of 5d-4f transitions. Wilson's, matrix method, Badger's formula, and Jones and El-Sonbati equations were used to calculate the UO bond distances from the values of the stretching and interaction force constants. The most probable correlation between UO force constant to UO bond distance were satisfactorily discussed in term of Badger's rule and the equations suggested by Jones and El-Sonbati. The effect of Hamette's constant is also discussed.

Supramolecular spectral studies on metal-ligand bonding of novel quinoline azodyes

Diab,El-Sonbati,El-Bindary,Barakat

, p. 428 - 439 (2013/10/21)

(Graph Presented) A series of novel bidentate azodye quinoline ligands were synthesized with various p-aromatic amines like p-(OCH3, CH 3, H, Cl and NO2). All ligands and their complexes have been characterized on the basis of elemental analysis, IR, 1H and 13C NMR data and spectroscopic studies. IR and 1H NMR studies reveal that the ligands (HLn) exists in the tautomeric azo/hydrazo form in both states with intramolecular hydrogen bonding. The ligands obtained contain N=N and phenolic functional groups in different positions with respect to the quinoline group. IR spectra show that the azo compounds (HLn) act as monobasic bidentate ligand by coordinating via the azodye (-N=N-) and oxygen atom of the phenolic group. The ESR (g ∥ and g⊥) and bonding α2 parameters of the copper ion were greatly affected by substituting several groups position of ring of quinoline and p-aromatic ring. The ESR spectra of copper complexes in powder form show a broad signal with values in order g ∥ > g⊥ > ge > 2.0023. The value of covalency factor β and orbital reduction factor K accounts for the covalent nature of the complexes. All complexes possessed an octahedral and square planar geometry. The thermal properties of the complexes were investigated using TGA and DSC. It is found that the change of substituent affects the thermal properties of complexes.

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