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Phenol, 4-chloro-3-(2-propenyloxy)-, also known as allyl ether chlorophenol, is a chemical compound with the molecular formula C9H9ClO2. It is a colorless to yellowish liquid with a strong, slightly sweet odor. Phenol, 4-chloro-3-(2-propenyloxy)is commonly used as an intermediate in the synthesis of various products and possesses antimicrobial properties.

83613-31-4

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83613-31-4 Usage

Uses

Used in Pharmaceutical Industry:
Phenol, 4-chloro-3-(2-propenyloxy)is used as an intermediate in the synthesis of pharmaceuticals for its ability to react with other compounds to form new molecules with potential therapeutic effects.
Used in Agrochemical Industry:
In the agrochemical industry, Phenol, 4-chloro-3-(2-propenyloxy)is utilized as an intermediate in the production of agrochemicals, contributing to the development of products that enhance crop protection and yield.
Used in Dye Industry:
Phenol, 4-chloro-3-(2-propenyloxy)is employed as an intermediate in the synthesis of dyes, enabling the creation of a wide range of colored compounds used in various applications, including textiles and plastics.
Used as a Disinfectant:
Due to its antimicrobial properties, Phenol, 4-chloro-3-(2-propenyloxy)is used as a disinfectant to eliminate harmful microorganisms and ensure cleanliness and hygiene in various settings.
Used as a Fungicide:
Phenol, 4-chloro-3-(2-propenyloxy)is also used as a fungicide to prevent the growth of fungi that can cause diseases in plants and pose health risks in certain environments.
However, it is important to note that 4-chloro-3-(2-propenyloxy)phenol is a potential mutagen and irritant to the skin, eyes, and respiratory system. Therefore, it should be handled with care in laboratory settings and appropriate safety measures should be taken to minimize exposure and potential health risks.

Check Digit Verification of cas no

The CAS Registry Mumber 83613-31-4 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 8,3,6,1 and 3 respectively; the second part has 2 digits, 3 and 1 respectively.
Calculate Digit Verification of CAS Registry Number 83613-31:
(7*8)+(6*3)+(5*6)+(4*1)+(3*3)+(2*3)+(1*1)=124
124 % 10 = 4
So 83613-31-4 is a valid CAS Registry Number.

83613-31-4SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 17, 2017

Revision Date: Aug 17, 2017

1.Identification

1.1 GHS Product identifier

Product name 4-chloro-3-prop-2-enoxyphenol

1.2 Other means of identification

Product number -
Other names -

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:83613-31-4 SDS

83613-31-4Relevant academic research and scientific papers

Practical regioselective halogenation of vinylogous esters: Synthesis of differentiated mono-haloresorcinols and polyhalogenated resorcinols

Chen, Xiaohong,Liu, Xiaoguang,Martinez, Jenny S.,Mohr, Justin T.

, p. 3653 - 3665 (2016/06/06)

A practical and efficient method for the direct, regioselective conversion of vinylogous esters to haloresorcinols is reported. Control of the reaction conditions enables synthesis of either the 4- or 6-haloresorcinol isomers from a common precursor with excellent regiocontrol and high yield. The generality and functional group tolerance of this novel protocol is demonstrated. The utility of this methodology to access polyhaloresorcinols is also reported. These methods create useful functionalized building blocks for further synthetic applications.

Regiodivergent halogenation of vinylogous esters: One-pot, transition-metal-free access to differentiated haloresorcinols

Chen, Xiaohong,Martinez, Jenny S.,Mohr, Justin T.

supporting information, p. 378 - 381 (2015/01/30)

We report an efficient method for the regiodivergent synthesis of halogenated resorcinol derivatives using readily available vinylogous esters and sulfonyl halide halogen donors. Either the 4- or 6-haloresorcinol isomer is accessible from a common precursor. In contrast to conventional oxidants for arene halogenation, mild sulfonyl halides allow broad functional group compatibility. The strategy inherently differentiates the two resorcinol oxygen atoms and enhances the potential for complex molecule synthesis.

Antidiabetic activity of passive nonsteroidal glucocorticoid receptor modulators

Link,Sorensen, Bryan,Patel, Jyoti,Grynfarb, Marlena,Goos-Nilsson, Annika,Wang, Jiahong,Fung, Steven,Wilcox, Denise,Zinker, Brad,Nguyen, Phong,Hickman, Bach,Schmidt, James M.,Swanson, Sue,Tian, Zhenping,Reisch, Thomas J.,Rotert, Gary,Du, Jia,Lane, Benjamin,Von Geldern, Thomas W.,Jacobson, Peer B.

, p. 5295 - 5304 (2007/10/03)

Much has been learned about the consequences of glucocorticoid receptor antagonism by studying steroidal active antagonists such as RU-38486 (1). In the liver glucocorticoid receptor antagonism suppresses hepatic glucose production decreasing plasma glucose levels; however, extrahepatic antagonism produces several undesirable side effects including activation of the hypothalamic pituitary adrenal axis. A series of nonsteroidal passive N-(3-dibenzylamino-2- alkyl-phenyl)-methanesulfonamide glucocorticoid receptor modulators was discovered. Liver selective and systemically available members of this series were found and characterized in diabetes and side effect rodent models. A highly liver selective member of this series, acid 14, shows efficacy in the ob/ob model of diabetes. It lowers plasma glucose, cholesterol, and free fatty acid concentrations and reduces the rate of body weight gain. The structurally related systemically available passive modulator 12 lowers glucose, HbA 1c, triglyceride, free fatty acid, and cholesterol levels. Interestingly, it did not acutely activate the hypothalamic pituitary adrenal axis in unstressed CD-1 mice or have the abortive effects observed with 1. These results indicate that passive GR antagonists may have utility as antidiabetic agents.

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