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Ethyl benzoylacetate, also known as Benzoylacetic acid ethyl ester, is an ester with a brandy-like odor and sweet, woody, cherry, and phenolic-like flavor. It undergoes microbial reduction by certain yeasts and fungi to form ethyl (S)-3-hydroxy-3-phenylpropionate and can participate in chemical reactions such as Claisen condensation.

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  • 94-02-0 Structure
  • Basic information

    1. Product Name: Ethyl benzoylacetate
    2. Synonyms: AKOS 92622;AKOS BBS-00004233;3-OXO-3-PHENYLPROPIONIC ACID ETHYL ESTER;LABOTEST-BB LTBB001316;FEMA 2423;ETHYL BENZOYLACETATE;ETHYL BETA-KETO-BETA-PHENYLPROPIONATE;ETHYL 3-OXO-3-PHENYLPROPANOATE
    3. CAS NO:94-02-0
    4. Molecular Formula: C11H12O3
    5. Molecular Weight: 192.21
    6. EINECS: 202-295-3
    7. Product Categories: Pharmaceutical Intermediates;Pyridines
    8. Mol File: 94-02-0.mol
  • Chemical Properties

    1. Melting Point: <0 °C
    2. Boiling Point: 265-270 °C(lit.)
    3. Flash Point: 147 °F
    4. Appearance: Brown/Powder
    5. Density: 1.11 g/mL at 25 °C(lit.)
    6. Vapor Density: 6.6 (vs air)
    7. Vapor Pressure: 0.00783mmHg at 25°C
    8. Refractive Index: n20/D 1.52(lit.)
    9. Storage Temp.: Store below +30°C.
    10. Solubility: alcohol: miscible
    11. PKA: 9.85±0.23(Predicted)
    12. Water Solubility: INSOLUBLE
    13. Sensitive: Light Sensitive
    14. Merck: 14,3767
    15. BRN: 389944
    16. CAS DataBase Reference: Ethyl benzoylacetate(CAS DataBase Reference)
    17. NIST Chemistry Reference: Ethyl benzoylacetate(94-02-0)
    18. EPA Substance Registry System: Ethyl benzoylacetate(94-02-0)
  • Safety Data

    1. Hazard Codes: N/A
    2. Statements: N/A
    3. Safety Statements: 24/25
    4. WGK Germany: 2
    5. RTECS: AF4878000
    6. TSCA: Yes
    7. HazardClass: IRRITANT
    8. PackingGroup: N/A
    9. Hazardous Substances Data: 94-02-0(Hazardous Substances Data)

94-02-0 Usage

Uses

Used in Organic Synthesis:
Ethyl benzoylacetate is used as an intermediate for different organic synthesis processes. It serves as a key component in the preparation of various organic compounds.
Used in Flavor and Fragrance Industry:
Ethyl benzoylacetate is used as a flavoring agent, providing a sweet, cherry, fruity, and berry-like taste with woody and jammy notes. Its taste threshold values make it suitable for use in food and beverage applications.
Used in Chemical Reactions:
Ethyl benzoylacetate is utilized in chemical reactions such as the synthesis of ethyl 2-fluoro-2-benzolyacetate and the preparation of iodonium ylides. These reactions contribute to the development of new chemical compounds and materials.

Preparation

By condensation of ethyl benzoate with ethyl acetate (via Claisen condensation) using sodium ethoxide; another method also known.

Synthesis Reference(s)

Journal of Medicinal Chemistry, 28, p. 1864, 1985 DOI: 10.1021/jm00150a018Journal of Heterocyclic Chemistry, 32, p. 723, 1995 DOI: 10.1002/jhet.5570320303The Journal of Organic Chemistry, 38, p. 2731, 1973 DOI: 10.1021/jo00955a040

Check Digit Verification of cas no

The CAS Registry Mumber 94-02-0 includes 5 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 2 digits, 9 and 4 respectively; the second part has 2 digits, 0 and 2 respectively.
Calculate Digit Verification of CAS Registry Number 94-02:
(4*9)+(3*4)+(2*0)+(1*2)=50
50 % 10 = 0
So 94-02-0 is a valid CAS Registry Number.
InChI:InChI=1/C11H12O3/c1-2-14-11(13)8-10(12)9-6-4-3-5-7-9/h3-7H,2,8H2,1H3

94-02-0 Well-known Company Product Price

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  • (Code)Product description
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  • TCI America

  • (B0097)  Ethyl Benzoylacetate  >95.0%(GC)(T)

  • 94-02-0

  • 25g

  • 185.00CNY

  • Detail
  • TCI America

  • (B0097)  Ethyl Benzoylacetate  >95.0%(GC)(T)

  • 94-02-0

  • 100g

  • 490.00CNY

  • Detail
  • TCI America

  • (B0097)  Ethyl Benzoylacetate  >95.0%(GC)(T)

  • 94-02-0

  • 500g

  • 1,690.00CNY

  • Detail
  • Alfa Aesar

  • (L05030)  Ethyl benzoylacetate, 90+%   

  • 94-02-0

  • 50g

  • 289.0CNY

  • Detail
  • Alfa Aesar

  • (L05030)  Ethyl benzoylacetate, 90+%   

  • 94-02-0

  • 250g

  • 1120.0CNY

  • Detail
  • Alfa Aesar

  • (L05030)  Ethyl benzoylacetate, 90+%   

  • 94-02-0

  • 1000g

  • 3479.0CNY

  • Detail

94-02-0SDS

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 Ethyl benzoylacetate

1.2 Other means of identification

Product number -
Other names ethyl 3-oxo-3-phenylpropionate

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only. Food additives -> Flavoring Agents
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:94-02-0 SDS

94-02-0Relevant articles and documents

A Carbene Strategy for Progressive (Deutero)Hydrodefluorination of Fluoroalkyl Ketones

Bi, Xihe,Sivaguru, Paramasivam,Song, Qingmin,Wang, Zikun,Zanoni, Giuseppe,Zhang, Xiaolong,Zhang, Xinyu

supporting information, (2021/12/23)

Hydrodefluorination is one of the most promising chemical strategies to degrade perfluorochemicals into partially fluorinated compounds. However, controlled progressive hydrodefluorination remains a significant challenge, owing to the decrease in the stre

A metal-free strategy for the cross-dehydrogenative coupling of 1,3-dicarbonyl compounds with 2-methoxyethanol

Chang, Yu-Lun,Huang, Sheng-Hua,Kudale, Vishal Suresh,Wang, Jeh-Jeng,Zheng, Sheng

supporting information, p. 1226 - 1230 (2022/02/21)

Here, we report a metal-free approach for the construction of methylene-bridged bis-1,3-dicarbonyl compounds via cross-dehydrogenative coupling of 1,3-dicarbonyl compounds with 2-methoxyethanol. In addition, we have extended this methodology to synthesize tetra-substituted pyridine derivatives using 1,3-dicarbonyl, 2-methoxyethanol and NH4OAc in one step. The key advantages include accepting a wide range of substrates, utilizing O2 as the sole oxidant, and synthesizing biologically active compounds such as 1,4-dihydropyridine and pyrazole. This journal is

Gold N-Heterocyclic Carbene Catalysts for the Hydrofluorination of Alkynes Using Hydrofluoric Acid: Reaction Scope, Mechanistic Studies and the Tracking of Elusive Intermediates

Bédard, Sandrine,Cavallo, Luigi,Falivene, Laura,Gauthier, Rapha?l,Nolan, Steven P.,Paquin, Jean-Fran?ois,Saab, Marina,Tzouras, Nikolaos V.,Van Hecke, Kristof,Zhang, Ziyun

supporting information, (2021/12/09)

An efficient and chemoselective methodology deploying gold-N-heterocyclic carbene (NHC) complexes as catalysts in the hydrofluorination of terminal alkynes using aqueous HF has been developed. Mechanistic studies shed light on an in situ generated catalyst, formed by the reaction of Br?nsted basic gold pre-catalysts with HF in water, which exhibits the highest reactivity and chemoselectivity. The catalytic system has a wide alkyl substituted-substrate scope, and stoichiometric as well as catalytic reactions with tailor-designed gold pre-catalysts enable the identification of various gold species involved along the catalytic cycle. Computational studies aid in understanding the chemoselectivity observed through examination of key mechanistic steps for phosphine- and NHC-coordinated gold species bearing the triflate counterion and the elusive key complex bearing a bifluoride counterion.

Non-metal Lewis acid-catalyzed cross-Claisen condensation for β-keto esters

Han, Zhengyu,Huang, Hai,Meng, Fuliang,Yang, Zhenkun,Zhang, Tianyu,Zhou, Dapeng

supporting information, p. 9163 - 9166 (2021/11/16)

In this work, we disclose a new catalytic and highly chemoselective cross-Claisen condensation of esters. In the presence of TBSNTf2 as a non-metal Lewis acid, various esters can undergo cross-Claisen condensation to form β-keto esters which are important building blocks. Compared with the traditional Claisen condensation, this process, employing silyl ketene acetals (SKAs) as carbonic nucleophiles to achieve cross-Claisen condensation, requires mild conditions and has good tolerance of functional groups. This journal is

Amide/Ester Cross-Coupling via C-N/C-H Bond Cleavage: Synthesis of β-Ketoesters

Chen, Jiajia,Joseph, Devaneyan,Xia, Yuanzhi,Lee, Sunwoo

, p. 5943 - 5953 (2021/04/02)

Activated primary, secondary, and tertiary amides were coupled with enolizable esters in the presence of LiHMDS to obtain good yields of β-ketoesters at room temperature. Notably, this protocol provides an efficient, mild, and high chemoselectivity method

Catalyst- And Substituent-Controlled Regio- And Stereoselective Synthesis of Indolyl Acrylates by Lewis-Acid-Catalyzed Direct Functionalization of 3-Formylindoles with Diazo Esters

Jamshaid, Sana,Devkota, Shreedhar,Lee, Yong Rok

supporting information, p. 2140 - 2146 (2021/04/05)

A facile and efficient In(OTf)3- and BF3·OEt2-catalyzed direct transformation of 3-formylindoles with diazo esters has been developed for synthesizing diverse and functionalized indolyl acrylates. This one-pot protocol furnishes various (Z)-α-hydroxy-β-indolyl acrylates, (E)-β-(2-alkoxy-2-oxoethoxy)-α-indolyl acrylates, and (Z)-3-hydroxy-2-indolyl acrylates by a catalyst- and substituent-controlled, regio- and stereoselective cascade reaction. The protocol has several advantages, including low loading of the catalyst, mild reaction conditions, broad scope, and high functional group tolerance. The synthesized compounds can be further converted into diversely functionalized materials.

PIKFYVE KINASE INHIBITORS

-

Page/Page column 208, (2021/08/20)

The present invention relates to compounds useful as inhibitors of phosphatidylinositol-3-phosphate 5-kinase (PIKfyve) as well as their use for treating diseases and disorders associated with PIKfyve.

Electrochemical Oxidative Cyclization: Synthesis of Polysubstituted Pyrrole from Enamines

Chen, Zhiwei,Shi, Guang,Tang, Wei,Sun, Jie,Wang, Wenxing

supporting information, p. 951 - 955 (2021/02/03)

A conceptually novel method for the preparation of pyrrole is described by electrochemical-oxidation-induced intermolecular annulation via enamines. In a simple undivided cell, based on a sodium acetate-facilitated, polysubstituted pyrrole derivations has been facilely synthesized under external oxidant-free condition. This electrosynthetic approach providing an environmentally benign protocol for C?C bond cross-coupling and oxidative annulation, which features unparalleled broad scope of substrates and practicality.

Construction of isoxazolone-fused phenanthridinesviaRh-catalyzed cascade C-H activation/cyclization of 3-arylisoxazolones with cyclic 2-diazo-1,3-diketones

Hu, Wangcheng,He, Xinwei,Zhou, Tongtong,Zuo, Youpeng,Zhang, Shiwen,Yang, Tingting,Shang, Yongjia

supporting information, p. 552 - 556 (2021/02/06)

A Rh(iii)-catalyzed cascade C-H activation/intramolecular cyclization of 3-aryl-5-isoxazolones with cyclic 2-diazo-1,3-diketones was described, leading to the formation of isoxazolo[2,3-f]phenanthridine skeletons. The protocol features the simultaneous one-pot formation of two new C-C/C-N bonds and one heterocycle in moderate-to-good yields with good functional group compatibility. It is amenable to large-scale synthesis and further transformation.

Sulfur-controlled and rhodium-catalyzed formal (3 + 3) transannulation of thioacyl carbenes with alk-2-enals and mechanistic insights

Wu, Qiuyue,Dong, Ziyang,Xu, Jiaxi,Yang, Zhanhui

supporting information, p. 3173 - 3180 (2021/04/21)

A rhodium-catalyzed denitrogenative formal (3 + 3) transannulation of 1,2,3-thiadiazoles with alk-2-enals is achieved, producing 2,3-dihydrothiopyran-4-ones in moderate to excellent yields. An inverse KIE of 0.49 is obtained, suggesting the reversibility of the oxidative addition of thioacyl Rh(i) carbenes to alk-2-enals. The late-stage structural modifications of steroid compounds are realized. Moreover, our studies show that thioacyl carbenes have different reactivities to those of α-oxo and α-imino carbenes, and highlight the importance of heteroatoms in deciding the reactivities of heterovinyl carbenes.

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