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Methyl 4-bromobenzoate is a halogenated benzoate compound that serves as a versatile reagent in organic synthesis. It is characterized by the presence of a bromine atom attached to a benzene ring, with a methyl ester group attached to the carboxylic acid. This unique structure allows it to participate in various chemical reactions and be used in the synthesis of different compounds.

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  • 619-42-1 Structure
  • Basic information

    1. Product Name: Methyl 4-bromobenzoate
    2. Synonyms: RARECHEM AL BF 0075;BRBSME;METHYL P-BROMOBENZOATE;METHYL 4-BROMOBENZOATE;4-BROMOBENZOIC ACID METHYL ESTER;4-bromo-benzoicacimethylester;Benzoic acid, 4-bromo-, methyl ester;Benzoic acid, p-bromo-, methyl ester
    3. CAS NO:619-42-1
    4. Molecular Formula: C8H7BrO2
    5. Molecular Weight: 215.04
    6. EINECS: 210-596-6
    7. Product Categories: Aromatic Esters;Acids & Esters;Bromine Compounds;C8 to C9;Carbonyl Compounds;Esters;Pyridines
    8. Mol File: 619-42-1.mol
  • Chemical Properties

    1. Melting Point: 77-81 °C(lit.)
    2. Boiling Point: 252.95°C (rough estimate)
    3. Flash Point: 112.4 °C
    4. Appearance: White/Crystals or Crystalline Powder
    5. Density: 1,689 g/cm3
    6. Vapor Pressure: 0.0111mmHg at 25°C
    7. Refractive Index: 1.5500 (estimate)
    8. Storage Temp.: Sealed in dry,Room Temperature
    9. Solubility: Chloroform (Slightly), Methanol (Slightly)
    10. Water Solubility: Insoluble in water.
    11. Merck: 14,1408
    12. BRN: 2045132
    13. CAS DataBase Reference: Methyl 4-bromobenzoate(CAS DataBase Reference)
    14. NIST Chemistry Reference: Methyl 4-bromobenzoate(619-42-1)
    15. EPA Substance Registry System: Methyl 4-bromobenzoate(619-42-1)
  • Safety Data

    1. Hazard Codes: Xi
    2. Statements: 36/37/38
    3. Safety Statements: 26-24/25
    4. WGK Germany: 3
    5. RTECS:
    6. TSCA: Yes
    7. HazardClass: N/A
    8. PackingGroup: N/A
    9. Hazardous Substances Data: 619-42-1(Hazardous Substances Data)

619-42-1 Usage

Uses

Used in Organic Synthesis:
Methyl 4-bromobenzoate is used as a reagent in organic synthesis for the preparation of various compounds. Its bromine atom can be replaced by other functional groups, making it a valuable intermediate in the synthesis of pharmaceuticals, agrochemicals, and other specialty chemicals.
Used in Environmental Applications:
Methyl 4-bromobenzoate is used to stimulate microbial dechlorination of polychlorinated biphenyls (PCBs). PCBs are a group of toxic, persistent environmental pollutants that pose a significant risk to human health and the environment. By promoting the dechlorination process, Methyl 4-bromobenzoate helps in the bioremediation of contaminated sites.
Used in Cancer Therapy:
Methyl 4-bromobenzoate is used in the preparation of stable radioiodinating reagents to label monoclonal antibodies for radiotherapy of cancer. Radiolabeled antibodies can specifically target cancer cells, allowing for targeted radiation therapy with minimal damage to healthy tissues.
Used in Pharmaceutical Synthesis:
Methyl 4-bromobenzoate is used as a starting material in the synthesis of three-carbon-bridged 5-substituted furo[2,3-d]pyrimidine and 6-substituted pyrrolo[2,3-d]pyrimidine analogs, which are employed as antifolates. Antifolates are a class of drugs that inhibit the synthesis of folic acid, an essential nutrient for cell growth and replication, and are used in the treatment of various cancers.
Used in Cross-Coupling Reactions:
Methyl 4-bromobenzoate is used in cross-coupling reactions to synthesize various derivatives, such as methyl 4-tri-n-butylstannylbenzoate, methyl 4-(2-pyridyl)benzoate, and methyl 4-imidazo[1,2-a]pyridin-3-ylbenzoate. These reactions involve the formation of carbon-carbon bonds and are essential for the synthesis of complex organic molecules, including pharmaceuticals and agrochemicals.

Purification Methods

Crystallise the ester from MeOH. EtOH (m 81o, also 80.5o, 79.5o) or *C6H6/pet ether (m 78-79o). [Beilstein 9 H 352, 9 III 1405, 9 IV 1017.]

Check Digit Verification of cas no

The CAS Registry Mumber 619-42-1 includes 6 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 3 digits, 6,1 and 9 respectively; the second part has 2 digits, 4 and 2 respectively.
Calculate Digit Verification of CAS Registry Number 619-42:
(5*6)+(4*1)+(3*9)+(2*4)+(1*2)=71
71 % 10 = 1
So 619-42-1 is a valid CAS Registry Number.
InChI:InChI=1/C8H7BrO2/c1-11-8(10)6-2-4-7(9)5-3-6/h2-5H,1H3

619-42-1 Well-known Company Product Price

  • Brand
  • (Code)Product description
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  • Alfa Aesar

  • (A15517)  Methyl 4-bromobenzoate, 98+%   

  • 619-42-1

  • 5g

  • 226.0CNY

  • Detail
  • Alfa Aesar

  • (A15517)  Methyl 4-bromobenzoate, 98+%   

  • 619-42-1

  • 25g

  • 807.0CNY

  • Detail
  • Alfa Aesar

  • (A15517)  Methyl 4-bromobenzoate, 98+%   

  • 619-42-1

  • 100g

  • 2778.0CNY

  • Detail

619-42-1SDS

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 Methyl 4-bromobenzoate

1.2 Other means of identification

Product number -
Other names p-Bromobenzoic acid,methyl ester

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:619-42-1 SDS

619-42-1Relevant articles and documents

The tremulanes, a new group of sesquiterpenes from the aspen rotting fungus Phellinus tremulae

Ayer,Cruz

, p. 7529 - 7534 (1993)

A series of new sesquiterpenes, the tremulanes, possessing a previously unreported substituted perhydroazulene carbon skeleton, has been isolated from liquid cultures of the aspen (Populus tremuloides) rotting fungus Phellinus tremulae. The structures were determined by NMR techniques (1H- 1H COSY, HMQC, and HMBC) and other physical methods including, in the case of tremulenolide A (6), X-ray crystallography. The chemical correlation of tremulenediol A (10) with tremulenolide A (6) is described as is the correlation of tremulenedial (8) with tremulenediol B (11). The absolute configuration of the compounds is assigned by application of the olefin octant rule to the allylic alcohol tremulenediol A (10). These new sesquiterpenes do not obey the biogenetic isoprene rule and it is suggested that they may not be derived from farnesyl pyrophosphate.

Method for preparing carboxylic ester compounds by oxidizing and breaking carbon-carbon bonds of secondary alcohol compounds

-

Paragraph 0056-0057; 0092, (2021/06/02)

The invention discloses a method for preparing carboxylic ester compounds by oxidizing and breaking carbon-carbon bonds of secondary alcohol compounds. The method comprises the following steps: adding a secondary alcohol compound, an additive and a nitrogen-doped mesoporous carbon loaded monatomic catalyst into a fatty primary alcohol solvent, putting into a pressure container, sealing, introducing oxygen source gas with a certain pressure, controlling the pressure of the oxygen source gas to be 0.1-1 MPa and the reaction temperature to be 80-150 DEG C, and obtaining a product after the reaction to be the carboxylic ester compound. The nitrogen-doped mesoporous carbon-loaded monatomic catalyst adopted by the invention is high in activity, the highest separation yield of the carboxylic ester compound as a reaction product reaches 99%, the method is wide in application range, the reaction conditions are easy to control, the catalyst can be recycled, the post-treatment is simple, and the method is suitable for industrial production.

The Highly Effective Cobalt Based Metal–Organic Frameworks Catalyst for One Pot Oxidative Esterification Under Mild Conditions

Chindawong, Chakkresit,Mekrattanachai, Pagasukon,Setthaya, Naruemon,Song, Wei Guo,Zhu, Lei

, (2021/08/03)

The cobalt-based metal organic frameworks (Co-MOFs) catalyst has been prepared with using terephthalic acid and 4,4′-bipyridine as organic linkers by facile solvothermal method for one pot oxidative esterification. The prepared catalyst was pyrolysed at different temperature and then applied for oxidation of aldehyde using molecular oxygen as benign oxidant under mild conditions. The Co-MOFs pyrolysed at 800?°C (denoted as Co-MOFs-800) catalyst exhibited excellent catalytic activity, selectivity and recyclability toward the oxidative esterification of benzaldehydes. Furthermore, it can be reused up to 5 runs without significant loss of activity. Graphic Abstract: [Figure not available: see fulltext.]

Acetyl nitrate mediated conversion of methyl ketones to diverse carboxylic acid derivatives

Bernard, Josephine,Capilato, Joseph N.,Hoy, Erik P.,Mattiucci, Joseph,Pellegrinelli, Peter J.,Perez, Lark J.,Philippi, Shane,Schnorbus, Logan

, p. 5298 - 5302 (2021/06/30)

The development of a novel acetyl nitrate mediated oxidative conversion of methyl ketones to carboxylic acid derivatives is described. By analogy to the haloform reaction and supported by experimental and computational investigation we propose a mechanism for this transformation.

N-Heterocyclic Carbene Catalyzed Ester Synthesis from Organic Halides through Incorporation of Oxygen Atoms from Air

Tan, Hui,Wang, Shen-An,Yan, Zixi,Liu, Jianzhong,Wei, Jialiang,Song, Song,Jiao, Ning

supporting information, p. 2140 - 2144 (2020/12/01)

Oxygenation reactions with molecular oxygen (O2) as the oxygen source provides a green and straightforward strategy for the construction of O-containing compounds. Demonstrated here is a novel N-heterocyclic carbene (NHC) catalyzed oxidative transformation of simple and readily available organic halides into valuable esters through the incorporation of O-atoms from O2. Mechanistic studies prove that the deoxy Breslow intermediate generated in situ is oxidized to a Breslow intermediate for further transformation by this oxidative protocol. This method broadens the field of NHC catalysis and promotes oxygenation reactions with O2.

Direct bromodeboronation of arylboronic acids with CuBr2 in water

Tang, Yan-Ling,Xia, Xian-Song,Gao, Jin-Chun,Li, Min-Xin,Mao, Ze-Wei

supporting information, (2021/01/05)

An efficient and practical method has been developed for the preparation of aryl bromides via the direct bromodeboronation of arylboronic acids with CuBr2 in water. This strategy provides several advantages, such as being ligand-free, base-free, high yielding, and functional group tolerant.

Electro-Oxidative Selective Esterification of Methylarenes and Benzaldehydes

Yu, Congjun,?zkaya, Bünyamin,Patureau, Frederic W.

supporting information, p. 3682 - 3687 (2021/02/01)

A mild and green electro-oxidative protocol to construct aromatic esters from methylarenes and alcohols is herein reported. Importantly, the reaction is free of metals, chemical oxidants, bases, acids, and operates at room temperature. Moreover, the design of the electrolyte was found critical for the oxidation state and structure of the coupling products, a rarely documented effect. This electro-oxidative coupling process also displays exceptional tolerance of many fragile easily oxidized functional groups such as hydroxy, aldehyde, olefin, alkyne, as well as neighboring benzylic positions. The enantiomeric enrichment of some chiral alcohols is moreover preserved during this electro-oxidative coupling reaction, making it overall a promising synthetic tool.

Br?nsted acid-catalyzed chlorination of aromatic carboxylic acids

Yu, Zhiqun,Yao, Hongmiao,Xu, Qilin,Liu, Jiming,Le, Xingmao,Ren, Minna

, p. 685 - 689 (2021/04/09)

The chlorination of aromatic carboxylic acids with SOCl2 has been effectively performed by reacting with a Br?nsted acid as the catalyst. Based on this discovery, an efficient catalytic method that is cheaper than traditional catalytic methods was developed. 20 substrates were chlorinated offering excellent yields in a short reaction time. And the SOCl2/Br?nsted acid system has been used in a larger scale preparative reaction. A dual activation mechanism was proposed to prove the irreplaceable system of SOCl2/Br?nsted acid.

Oxidative esterification of alcohols by a single-side organically decorated Anderson-type chrome-based catalyst

Wang, Jingjing,Jiang, Feng,Tao, Chaofu,Yu, Han,Ruhlmann, Laurent,Wei, Yongge

supporting information, p. 2652 - 2657 (2021/04/21)

The direct esterification of alcohols with non-noble metal-based catalytic systems faces great challenges. Here, we report a new chrome-based catalyst stabilized by a single pentaerythritol decorated Anderson-type polyoxometalate, [N(C4H9)4]3[CrMo6O18(OH)3C{(OCH2)3CH2OH}], which can realize the efficient transformation from alcohols to esters by H2O2oxidation in good yields and high selectivity without extra organic ligands. A variety of alcohols with different functionalities including some natural products and pharmaceutical intermediates are tolerated in this system. The chrome-based catalyst can be recycled several times and still keep the original configuration and catalytic activity. We also propose a reasonable catalytic mechanism and prove the potential for industrial applications.

Efficient aerobic oxidation of alcohols to esters by acidified carbon nitride photocatalysts

Antonietti, Markus,Cheng, Jiajia,Lin, Sen,Savateev, Aleksandr,Wan, Qiang,Wang, Chong,Wang, Xinchen

, p. 116 - 125 (2020/12/21)

Photocatalytic aerobic oxidation of alcohols for the direct synthesis of esters has received significant attention in recent years, but the relatively low efficiency and selectivity under visible light irradiation is the main challenge for their practical applications. Here, surface acidic sites were imparted onto metal-free heterogeneous photocatalysts by the protonation of carbon nitride (HMCN) to promote the activity for the esterification reaction through further adsorption and activation of the intermediate aldehyde. The activation of the substrate could be remarkably modulated through tuning the acidic sites on the surface of the photocatalyst, leading to a controllable reactivity of the catalytic reaction. The one-pot process for the direct aerobic oxidative esterification of alcohol exhibits high efficiency and selectivity under mild and additive-free conditions and the apparent quantum yield (AQY) of the photocatalytic esterification reaction is 0.41% at 420 nm. Moreover, a scalable photocatalytic process by the merging of a continuous flow system with the heterogeneous HMCN photocatalyst is demonstrated, combining high catalytic efficiency and stability at ambient temperatures and being promising for larger-scale applications.

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