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Zinc, chloro(4-fluorophenyl)- is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

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  • 133472-27-2 Structure
  • Basic information

    1. Product Name: Zinc, chloro(4-fluorophenyl)-
    2. Synonyms:
    3. CAS NO:133472-27-2
    4. Molecular Formula: C6H4ClFZn
    5. Molecular Weight: 195.939
    6. EINECS: N/A
    7. Product Categories: N/A
    8. Mol File: 133472-27-2.mol
  • Chemical Properties

    1. Melting Point: N/A
    2. Boiling Point: N/A
    3. Flash Point: N/A
    4. Appearance: N/A
    5. Density: N/A
    6. Refractive Index: N/A
    7. Storage Temp.: N/A
    8. Solubility: N/A
    9. CAS DataBase Reference: Zinc, chloro(4-fluorophenyl)-(CAS DataBase Reference)
    10. NIST Chemistry Reference: Zinc, chloro(4-fluorophenyl)-(133472-27-2)
    11. EPA Substance Registry System: Zinc, chloro(4-fluorophenyl)-(133472-27-2)
  • Safety Data

    1. Hazard Codes: N/A
    2. Statements: N/A
    3. Safety Statements: N/A
    4. WGK Germany:
    5. RTECS:
    6. HazardClass: N/A
    7. PackingGroup: N/A
    8. Hazardous Substances Data: 133472-27-2(Hazardous Substances Data)

133472-27-2 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 133472-27-2 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,3,3,4,7 and 2 respectively; the second part has 2 digits, 2 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 133472-27:
(8*1)+(7*3)+(6*3)+(5*4)+(4*7)+(3*2)+(2*2)+(1*7)=112
112 % 10 = 2
So 133472-27-2 is a valid CAS Registry Number.

133472-27-2SDS

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 chlorozinc(1+),fluorobenzene

1.2 Other means of identification

Product number -
Other names 4-fluorobenzyl zinc chloride

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:133472-27-2 SDS

133472-27-2Relevant articles and documents

Ni-Catalyzed Synthesis of Thiocarboxylic Acid Derivatives

Monteith, John J.,Scotchburn, Katerina,Mills, L. Reginald,Rousseaux, Sophie A. L.

supporting information, p. 619 - 624 (2022/01/20)

A Ni-catalyzed cross-coupling of readily accessible O-alkyl xanthate esters or thiocarbonyl imidazolides and organozinc reagents for the synthesis of thiocarboxylic acid derivatives has been developed. This method benefits from a fast reaction time, mild reaction conditions, and ease of starting material synthesis. The use of transition-metal catalysis to access a diverse range of thiocarbonyl-containing compounds provides a useful complementary approach when compared with previously established methodologies.

Enantiomerically Enriched α-Borylzinc Reagents by Nickel-Catalyzed Carbozincation of Vinylboronic Esters

Chen, Jingjia,Hu, Weipeng,Jin, Jing,Lovinger, Gabriel J.,Morken, James P.,Zhang, Chenlong

supporting information, p. 14189 - 14195 (2021/09/11)

In this paper is described a synthesis of enantiomerically enriched, configurationally stable organozinc reagents by catalytic enantioselective carbozincation of a vinylboronic ester. This process furnishes enantiomerically enriched α-borylzinc intermediates that are shown to undergo stereospecific reactions, producing enantioenriched secondary boronic ester products. The properties of the intermediate α-borylzinc reagent are probed and the synthetic utility of the products is demonstrated by application to the synthesis of (-)-aphanorphine and (-)-enterolactone.

The Formation of P-C Bonds Utilizing Organozinc Reagents for the Synthesis of Aryl- A nd Heteroaryl-Dichlorophosphines

Kirst, Christin,Tietze, Jonathan,Ebeling, Marian,Horndasch, Lukas,Karaghiosoff, Konstantin

, p. 17337 - 17343 (2021/11/18)

Aryl- A nd heteroaryl-dichlorophosphines are mildly and selectively made in a one-pot synthesis in moderate to good yields starting from the respective aryl bromides or five-membered heterocycles, following lithiation with nBuLi, transmetalation with ZnCl

Ni-Catalyzed C(sp3)–O Arylation of α-Hydroxy Esters

Monteith, John J.,Rousseaux, Sophie A. L.

supporting information, p. 9485 - 9489 (2021/12/09)

A Negishi cross-coupling of α-hydroxy ester derivatives and arylzinc reagents has been developed. This reaction tolerates both primary and secondary C(sp3)–O alcohol precursors and achieves efficient cross-coupling under Ni catalysis without the need for added external metal reductant, photocatalyst, or additives. The arylation of readily accessible C(sp3)–O electrophiles in this operationally simple, rapid, and mild reaction provides a complementary way of accessing desirable α-aryl ester products.

Oxidative Addition of Alkenyl and Alkynyl Iodides to a AuI Complex

Bower, John F.,Cadge, Jamie A.,Russell, Christopher A.,Sparkes, Hazel A.

supporting information, p. 6617 - 6621 (2020/03/13)

The first isolated examples of intermolecular oxidative addition of alkenyl and alkynyl iodides to AuI are reported. Using a 5,5′-difluoro-2,2′-bipyridyl ligated complex, oxidative addition of geometrically defined alkenyl iodides occurs readily, reversibly and stereospecifically to give alkenyl-AuIII complexes. Conversely, reversible alkynyl iodide oxidative addition generates bimetallic complexes containing both AuIII and AuI centers. Stoichiometric studies show that both new initiation modes can form the basis for the development of C?C bond forming cross-couplings.

Asymmetric Synthesis of Alkylzincs by Rhodium-Catalyzed Enantioselective Arylative Cyclization of 1,6-Enynes with Arylzincs

Chen, Jiahua,Hayashi, Tamio

supporting information, p. 18510 - 18514 (2020/08/21)

A chiral diene-rhodium complex was found to catalyze the reaction of 1,6-enynes with ArZnCl to give high yields of 2-(alkylidene)cyclopentylmethylzincs with high enantioselectivity (95–99 % ee). The enantioenriched alkylzincs were readily converted in a one-pot approach into a wide variety of functionalized products by taking advantage of their unique reactivity. The catalytic cylcle involves arylrhodation of alkyne, intramolecular alkenylrhodation of alkene, and transmetalation of the alkyl-rhodium intermediate into alkylzinc.

Modular Functionalization of Arenes in a Triply Selective Sequence: Rapid C(sp2) and C(sp3) Coupling of C?Br, C?OTf, and C?Cl Bonds Enabled by a Single Palladium(I) Dimer

Keaveney, Sinead T.,Kundu, Gourab,Schoenebeck, Franziska

supporting information, p. 12573 - 12577 (2018/09/18)

Full control over multiple competing coupling sites would enable straightforward access to densely functionalized compound libraries. Historically, the site selection in Pd0-catalyzed functionalizations of poly(pseudo)halogenated arenes has been unpredictable, being dependent on the employed catalyst, the reaction conditions, and the substrate itself. Building on our previous report of C?Br-selective functionalization in the presence of C?OTf and C?Cl bonds, we herein complete the sequence and demonstrate the first general arylations and alkylations of C?OTf bonds (in I dimer. This allowed the realization of the first general and triply selective sequential C?C coupling (in 2D and 3D space) of C?Br followed by C?OTf and then C?Cl bonds.

An Enantioselective Iodolactonization/Cross-Coupling Protocol for the Synthesis of Highly Substituted Enol Lactones

Fricke, Christoph,Wilking, Michael,Daniliuc, Constantin G.,Hennecke, Ulrich

, p. 3158 - 3166 (2018/07/06)

γ-Alkynoic acids readily undergo iodolactonization to give iodoenol lactones. Using commercially available (DHQD)2PHAL this transformation can be rendered asymmetric. In desymmetrization reactions of dialkynoic acids, good to very good enantioselectivities can be observed. Alternatively, kinetic resolution of already chiral, racemic γ-alkynoic acids can be carried out. The products of these iodolactonizations, iodoenol lactones, are suitable substrates for Palladium catalyzed cross-couplings. Negishi- as well as Sonogashira couplings can be carried out and allow the efficient synthesis of highly substituted enol lactones.

Rhodium-Catalyzed Arylzincation of Alkynes: Ligand Control of 1,4-Migration Selectivity

Ming, Jialin,Hayashi, Tamio

, p. 6188 - 6192 (2018/10/02)

The addition of arylzinc reagents ArZnCl 1 to alkynes 2 was found to be catalyzed by rhodium complexes in the presence of a catalytic amount of zinc chloride. The selectivity in giving 2-arylalkenylzinc species 3 or ortho-alkenylarylzinc species 4, the la

Nickel-Catalyzed Negishi Cross-Coupling of N -Acylsuccinimides: Stable, Amide-Based, Twist-Controlled Acyl-Transfer Reagents via N-C Activation

Shi, Shicheng,Szostak, Michal

supporting information, p. 3602 - 3608 (2017/08/15)

This paper reports a room temperature, nickel-catalyzed Negishi cross-coupling of N -acylsuccinimides with arylzinc reagents via selective N-C bond cleavage enabled by amide bond twist. The reaction proceeds using a commercially available, air-stable Ni(II) precatalyst in the absence of additives under exceedingly mild conditions. Of broad interest, this report introduces N -acylsuccinimides as stable, crystalline, electrophilic, cost-effective, benign, amide-based acyl transfer reagents via acyl metal intermediates. The reaction selectivity is governed by half-twist of the amide bond in N -acylsuccinimides, thus opening the door for applications in metal-catalyzed manifolds via redox-neutral reaction pathways tuneable by amide bond distortion.

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