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(S)-1-[2-(Trifluoromethyl)phenyl]ethanol is a chiral chemical compound with the molecular formula C9H9F3O. It is an alcohol derivative characterized by the presence of a trifluoromethyl and phenyl group, which endows it with unique chemical properties. (S)-1-[2-(Trifluoromethyl)phenyl]ethanol can exist in two enantiomeric forms due to its chiral center, making it a versatile building block in various chemical and pharmaceutical applications.

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  • 127852-27-1 Structure
  • Basic information

    1. Product Name: (S)-1-[2-(TRIFLUOROMETHYL)PHENYL]ETHANOL
    2. Synonyms: S-OTF-PEL;(S)-1-[2-(TRIFLUOROMETHYL)PHENYL]ETHANOL;(1S)-1-[2-(Trifluoromethyl)phenyl]ethan-1-ol;(S)-1-[2-(Trifluoromethyl)phenyl]ethanol,99%e.e.;(S)-1-[2-(TRIFLUOROMETHYL)PHENYL]ETHANOL(RS20014981)
    3. CAS NO:127852-27-1
    4. Molecular Formula: C9H9F3O
    5. Molecular Weight: 190.16
    6. EINECS: N/A
    7. Product Categories: API intermediates
    8. Mol File: 127852-27-1.mol
  • Chemical Properties

    1. Melting Point: N/A
    2. Boiling Point: 207℃
    3. Flash Point: 89℃
    4. Appearance: /
    5. Density: 1.234
    6. Vapor Pressure: 0.135mmHg at 25°C
    7. Refractive Index: 1.461
    8. Storage Temp.: 2-8°C
    9. Solubility: N/A
    10. CAS DataBase Reference: (S)-1-[2-(TRIFLUOROMETHYL)PHENYL]ETHANOL(CAS DataBase Reference)
    11. NIST Chemistry Reference: (S)-1-[2-(TRIFLUOROMETHYL)PHENYL]ETHANOL(127852-27-1)
    12. EPA Substance Registry System: (S)-1-[2-(TRIFLUOROMETHYL)PHENYL]ETHANOL(127852-27-1)
  • Safety Data

    1. Hazard Codes: Xi
    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: 127852-27-1(Hazardous Substances Data)

127852-27-1 Usage

Uses

Used in Organic Synthesis:
(S)-1-[2-(Trifluoromethyl)phenyl]ethanol is used as a key intermediate in organic synthesis for the production of pharmaceuticals and agrochemicals. Its trifluoromethyl and phenyl groups provide a valuable structural framework that can be further modified to create a wide range of compounds with specific biological activities.
Used in Pharmaceutical Manufacturing:
In the pharmaceutical industry, (S)-1-[2-(Trifluoromethyl)phenyl]ethanol is utilized as a starting material for the synthesis of various drugs. Its unique structural features allow for the development of new therapeutic agents with improved efficacy and selectivity.
Used as a Chiral Auxiliary in Asymmetric Synthesis:
(S)-1-[2-(Trifluoromethyl)phenyl]ethanol is employed as a chiral auxiliary in asymmetric synthesis to control the stereochemistry of chemical reactions. This application is crucial for the production of enantiomerically pure compounds, which are essential in many pharmaceutical and agrochemical applications.
Used as a Solvent in Chemical Reactions:
Due to its solubility properties, (S)-1-[2-(Trifluoromethyl)phenyl]ethanol is used as a solvent for a variety of chemical reactions. Its ability to dissolve a wide range of compounds makes it a useful component in many synthetic processes.
Used in Flavor and Fragrance Production:
(S)-1-[2-(Trifluoromethyl)phenyl]ethanol has potential applications in the production of flavor and fragrance compounds. Its unique chemical structure can contribute to the creation of novel scents and tastes, adding value to the fragrance and flavor industries.
Safety Precautions:
Due to its hazardous properties, (S)-1-[2-(Trifluoromethyl)phenyl]ethanol should be handled and stored with care. Proper safety measures, such as wearing protective equipment and using appropriate containment, should be followed to minimize risks associated with its use.

Check Digit Verification of cas no

The CAS Registry Mumber 127852-27-1 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,2,7,8,5 and 2 respectively; the second part has 2 digits, 2 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 127852-27:
(8*1)+(7*2)+(6*7)+(5*8)+(4*5)+(3*2)+(2*2)+(1*7)=141
141 % 10 = 1
So 127852-27-1 is a valid CAS Registry Number.
InChI:InChI=1/C9H9F3O/c1-6(13)7-4-2-3-5-8(7)9(10,11)12/h2-6,13H,1H3/t6-/m0/s1

127852-27-1SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 17, 2017

Revision Date: Aug 17, 2017

1.Identification

1.1 GHS Product identifier

Product name (S)-1-(2-(Trifluoromethyl)phenyl)ethanol

1.2 Other means of identification

Product number -
Other names (S)-1-[2-(TRIFLUOROMETHYL)PHENYL]ETHANOL

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:127852-27-1 SDS

127852-27-1Relevant articles and documents

A Cobalt(II) Complex Bearing the Amine(imine)diphosphine PN(H)NP Ligand for Asymmetric Transfer Hydrogenation of Ketones

Huo, Shangfei,Chen, Hong,Zuo, Weiwei

supporting information, p. 37 - 42 (2020/10/21)

Novel chiral cobalt complex a containing amine(imine)diphosphine PN(H)NP ligand and complex b containing bis(amine)diphosphine PN(H)N(H)P ligand were synthesized. The structures of two complexes were characterized by X-ray crystallography and high resolution mass spectrometry. The catalytic performances of cobalt complexes a and b for asymmetric transfer hydrogenation (ATH) of ketones under mild conditions were evaluated using 2-propanolisopropanol as solvent and hydrogen source after being activated by 8 equivalents of base. Complex a showed a good reactivity for reduction of ketones, with a turnover number (TON) of up to 555, and a maximum enantiomeric excess (ee) value of up to 91 %. Complex b exhibited inertness for hydrogenation of ketones. Electronic structure studies on a and b were conducted to account for the function of ligands on the catalytic performances.

Cinchona-Alkaloid-Derived NNP Ligand for Iridium-Catalyzed Asymmetric Hydrogenation of Ketones

Chen, Qian,Jiang, Jian,Li, Chun,Li, Linlin,Sun, Hao,Yang, Yuanyong,Zhang, Lin,Zhang, Ling,Zhao, Chong

supporting information, (2022/01/12)

Most ligands applied for asymmetric hydrogenation are synthesized via multistep reactions with expensive chemical reagents. Herein, a series of novel and easily accessed cinchona-alkaloid-based NNP ligands have been developed in two steps. By combining [Ir(COD)Cl]2, 39 ketones including aromatic, heteroaryl, and alkyl ketones have been hydrogenated, all affording valuable chiral alcohols with 96.0-99.9% ee. A plausible reaction mechanism was discussed by NMR, HRMS, and DFT, and an activating model involving trihydride was verified.

Manganese catalyzed asymmetric transfer hydrogenation of ketones

Zhang, Guang-Ya,Ruan, Sun-Hong,Li, Yan-Yun,Gao, Jing-Xing

supporting information, p. 1415 - 1418 (2020/11/20)

The asymmetric transfer hydrogenation (ATH) of a wide range of ketones catalyzed by manganese complex as well as chiral PxNy-type ligand under mild conditions was investigated. Using 2-propanol as hydrogen source, various ketones could be enantioselectively hydrogenated by combining cheap, readily available [MnBr(CO)5] with chiral, 22-membered macrocyclic ligand (R,R,R',R')-CyP2N4 (L5) with 2 mol% of catalyst loading, affording highly valuable chiral alcohols with up to 95% ee.

Ruthenium-catalyzed hydrogenation of aromatic ketones using chiral diamine and monodentate achiral phosphine ligands

Wang, Mengna,Zhang, Ling,Sun, Hao,Chen, Qian,Jiang, Jian,Li, Linlin,Zhang, Lin,Li, Li,Li, Chun

, (2021/03/24)

The Ru-catalyzed asymmetric hydrogenation of ketones with chiral diamine and monodentate achiral phosphine has been developed. A wide range of ketones were hydrogenated to afford the corresponding chiral secondary alcohols in good to excellent enantioselectivities (up to 98.1% ee). In addition, an appropriate mechanism for the asymmetric hydrogenation was proposed and verified by NMR spectroscopy.

One-Pot Chemoenzymatic Conversion of Alkynes to Chiral Amines

Mathew, Sam,Renn, Dominik,Rueping, Magnus,Sagadevan, Arunachalam

, p. 12565 - 12569 (2021/10/21)

A one-pot chemoenzymatic sequential cascade for the synthesis of chiral amines from alkynes was developed. In this integrated approach, just ppm amounts of gold catalysts enabled the conversion of alkynes to ketones (>99%) after which a transaminase was used to catalyze the production of biologically valuable chiral amines in a good yield (up to 99%) and enantiomeric excess (>99%). A preparative scale synthesis of (S)-methylbenzylamine and (S)-4-methoxy-methylbenzylamine from its alkyne form gave a yield of 59 and 92%, respectively, withee> 99%.

Tridentate nitrogen phosphine ligand containing arylamine NH as well as preparation method and application thereof

-

Paragraph 0095-0102; 0105-0109, (2021/06/26)

The invention discloses a tridentate nitrogen phosphine ligand containing arylamine NH as well as a preparation method and application thereof, and belongs to the technical field of organic synthesis. The tridentate nitrogen phosphine ligand disclosed by the invention is the first case of tridentate nitrogen phosphine ligand containing not only a quinoline amine structure but also chiral ferrocene at present, a noble metal complex of the type of ligand shows good selectivity and extremely high catalytic activity in an asymmetric hydrogenation reaction, meanwhile, a cheap metal complex of the ligand can also show good selectivity and catalytic activity in the asymmetric hydrogenation reaction, and is very easy to modify in the aspects of electronic effect and space structure, so that the ligand has huge potential application value. A catalyst formed by the ligand and a transition metal complex can be used for catalyzing various reactions, can be used for synthesizing various drugs, and has important industrial application value.

Mn(i) phosphine-amino-phosphinites: a highly modular class of pincer complexes for enantioselective transfer hydrogenation of aryl-alkyl ketones

Jayaprakash, Harikrishnan

supporting information, p. 14115 - 14119 (2021/10/25)

A series of Mn(i) catalysts with readily accessible and more π-accepting phosphine-amino-phosphinite (P′(O)N(H)P) pincer ligands have been explored for the asymmetric transfer hydrogenation of aryl-alkyl ketones which led to good to high enantioselectivities (up to 98%) compared to other reported Mn-based catalysts for such reactions. The easy tunability of the chiral backbone and the phosphine moieties makes P′(O)N(H)P an alternative ligand framework to the well-known PNP-type pincers.

Boron containing chiral Schiff bases: Synthesis and catalytic activity in asymmetric transfer hydrogenation (ATH) of ketones

Pa?a, Salih,Arslan, Nevin,Meri??, Nermin,Kayan, Cezmi,Bingül, Murat,Durap, Feyyaz,Aydemir, Murat

, (2019/09/19)

Asymmetric Transfer Hydrogenation (ATH) has been an attractive way for the reduction of ketones to chiral alcohols. A great number of novel and valuable synthetic pathways have been achived by the combination usage of organometallic and coordination chemistry for the production of important class of compounds and particularly optically active molecules. For this aim, four boron containing Schiff bases were synthesized by the reaction of 4-formylphenylboronic acid with chiral amines. The boron containing structures have been found as stable compounds due to the presence of covalent B–O bonds and thus could be handled in laboratory environment. They were characterized by 1H NMR and FT-IR spectroscopy and elemental analysis and they were used as catalyst in the transfer hydrogenation of ketones to the related alcohol derivatives with high conversions (up to 99%) and low enantioselectivities (up to 22% ee).

Enantioselective Hydroboration of Ketones Catalyzed by Rare-Earth Metal Complexes Containing Trost Ligands

Lu, Chengrong,Sun, Yuli,Xue, Mingqiang,Zhao, Bei

, p. 10504 - 10513 (2020/09/23)

Four chiral dinuclear rare-earth metal complexes [REL1]2 (RE = Y(1), Eu(2), Nd(3), La (4)) stabilized by Trost proligand H3L1 (H3L1 = (S,S)-2,6-bis[2-(hydroxydiphenylmethyl)pyrrolidin-1-ylmethyl]-4-methylphenol) were first prepared, and all were characterized by X-ray diffraction. Complex 4 was employed as the catalyst for enantioselective hydroboration reaction of substituted ketones, and the corresponding secondary alcohols with excellent yields and high ee values were obtained using reductant HBpin. The same result was also achieved using the combination of lanthanium amides La[N(SiMe3)2]3 with Trost proligand H3L1 in a 1:1 molar ratio. The experimental findings and DFT calculation revealed the possible mechanism of the enantioselective hydroboration reaction and defined the origin of the enantioselectivity in the current system.

Control of enantioselectivity in the enzymatic reduction of halogenated acetophenone analogs by substituent positions and sizes

Koesoema, Afifa Ayu,Standley, Daron M.,Ohshima, Shusuke,Tamura, Mayumi,Matsuda, Tomoko

supporting information, (2020/03/23)

We utilized acetophenone reductase from Geotrichum candidum NBRC 4597 (GcAPRD), wild type and Trp288Ala mutant, to reduce halogenated acetophenone analogs to their corresponding (S)- and (R)-alcohols beneficial as pharmaceutical intermediates. Reduction by wild type resulted in excellent (S)-enantioselectivity for all of the substrates tested. Meanwhile, reduction by Trp288Ala resulted in high (R)-enantioselectivity for the reduction of 4′ substituted acetophenone and 2′-trifluoromethylacetophenone. In addition to that, we were able to control the enantioselectivity of Trp288Ala by the positions and sizes of the halogen substituents.

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