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106539-32-6

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106539-32-6 Usage

General Description

[1,1-Biphenyl]-2,4-diol,5-chloro-(9CI) is a chemical compound with the molecular formula C12H9ClO2. It is a chlorinated derivative of biphenyl-2,4-diol, and is also known as 5-chloro-2,4-dihydroxybiphenyl. [1,1-Biphenyl]-2,4-diol,5-chloro-(9CI) is used in various chemical and industrial processes, and it is also of interest in the field of medicinal chemistry due to its potential pharmacological properties. Research has shown that it may have antioxidant and antibacterial activities, making it a potential candidate for the development of new drugs. Additionally, it has been studied for its potential use as a precursor in the synthesis of other organic compounds. Understanding the properties and uses of [1,1-Biphenyl]-2,4-diol,5-chloro-(9CI) is important for the fields of chemistry, medicine, and industrial applications.

Check Digit Verification of cas no

The CAS Registry Mumber 106539-32-6 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,0,6,5,3 and 9 respectively; the second part has 2 digits, 3 and 2 respectively.
Calculate Digit Verification of CAS Registry Number 106539-32:
(8*1)+(7*0)+(6*6)+(5*5)+(4*3)+(3*9)+(2*3)+(1*2)=116
116 % 10 = 6
So 106539-32-6 is a valid CAS Registry Number.

106539-32-6SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 12, 2017

Revision Date: Aug 12, 2017

1.Identification

1.1 GHS Product identifier

Product name 4-chloro-6-phenylbenzene-1,3-diol

1.2 Other means of identification

Product number -
Other names [1,1-biphenyl]-2,4-diol,5-chloro

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:106539-32-6 SDS

106539-32-6Upstream product

106539-32-6Downstream Products

106539-32-6Relevant articles and documents

Aryl Cations from Aromatic Halides. Photogeneration and Reactivity of 4-Hydroxy(methoxy)phenyl Cation

Protti, Stefano,Fagnoni, Maurizio,Mella, Mariella,Albini, Angelo

, p. 3465 - 3473 (2007/10/03)

The photochemistry of 4-chlorophenol (1) and 4-chloroanisole (2) has been examined in a range of solvents and found to lead mainly to reductive dehalogenation, through a homolytic path in cyclohexane and a heterolytic path in alcohols. Heterolysis of 1 and 2 in methanol and 2,2,2-trifluoroethanol offers a convenient access to triplet 4-hydroxy- and 4-methoxyphenyl cations. These add to π nucleophiles, viz., 2,3-dimethyl-2-butene, cyclohexene, and benzene, giving the arylated products in medium to good yields. Wagner-Meerwein hydride and alkyl migration are evidence for the cationic mechanism of the addition to alkenes. Arylation (with no rearrangement) was obtained to some extent also in nonprotic polar solvents such as MeCN and ethyl acetate, reasonably via an exciplex and with efficiency proportional to the nucleophilicity of the trap (2,3-dimethyl-2-butene > cyclohexene ? benzene).

Formation and reactivity of 4-oxocyclohexa-2,5-dienylidene in the photolysis of 4-chlorophenol in aqueous solution at ambient temperature

Grabner, Gottfried,Richard, Claire,K?hler, Gottfried

, p. 11470 - 11480 (2007/10/02)

Nanosecond laser flash photolysis of an aqueous solution of 4-chlorophenol (λexc = 266 nm) produces, at pulse end, a transient with absorption maxima at 384, 370, and ca. 250 nm; upon addition of an H-donor such as 2-propanol, this spectrum is converted into that of the phenoxyl radical (λmax = 400 and 385 nm), and in presence of O2, it is converted into a transient with a broad absorption band peaking at 460 nm. This reaction behavior can be understood by assuming formation of the carbene, 4-oxocyclohexa-2,5-dienylidene, by elimination of HCl from excited 4-chlorophenol; the pulse end transient spectrum is assigned to this species, while the 460 nm band is assigned to benzoquinone O-oxide formed by addition of O2 to the carbene. Both phenoxyl radical and benzoquinone O-oxide are produced upon photolysis of 4-chlorophenol in neat alkanols as well. On the other hand, photolysis in n-hexane yields the triplet-triplet absorption, which is absent in polar solvents, and no indication of carbene formation. It can be concluded that the primary step of 4-chlorophenol photolysis in aqueous or alcoholic solution is heterolytic C-Cl bond scission; a quantum yield of 0.75 is determined for it in neutral or acid aqueous medium upon excitation at 266 nm. Photolysis of chlorophenolate produces the same transients, but with a markedly lower yield, and, in addition, eaq- and 4-chlorophenoxyl radicals. The proposed reaction mechanism provides a straightforward explanation of the results of photoproduct analysis, published by previous authors as well as contributed in the present work. In particular, formation of p-benzoquinone in the presence of O2 can be accounted for by intermediate formation of benzoquinone O-oxide. Production of 4-oxocyclohexa-2,5-dienylidene with high yield allows, for the first time, extensive investigation of the kinetics and mechanism of the reactions of a carbene in an aqueous environment. In the present work, we have studied (a) the addition reaction with O2 on the one hand and with halides on the other; (b) H abstraction reactions with alkanols; (c) reaction with 4-chlorophenol itself; and (d) reaction with H2O. The rate constants for reaction with O2 (3.5 × 109 M-1 s-1) and with I- (4.6 × 109 M-1 s-1) are close to the diffusion-controlled limit, whereas reactions with Br- (6.8 × 107 M-1 s-1) and Cl- (5 M-1 s-1) are slower. Rate constants for reaction with alkanols follow the pattern known for their reactions with radicals, with values ranging from 5 × 105 M-1 s-1 for tert-butyl alcohol to 1.9 × 107 M-1 s-1 for 2-butanol. All these observations are consistent with the triplet character of the carbene. A rate constant of 1.5 × 103 M-1 s-1 has been determined for reaction with H2O. This reaction is not accompanied by formation of OH radicals; it is concluded that it proceeds by insertion into the O-H bond rather than by O-H cleavage. The exceptional stability of the carbene in aqueous solution is thus mainly attributed to the high barrier for O-H rupture in the water molecule. Additionally, a specific carbene-H2O interaction is revealed by semiempirical calculations, which could contribute to energetic and orientational hindrance of the reaction. Further theoretical results support the interpretation of both spectroscopic and kinetic properties of the carbene.

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