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(R)-(-)-3-HYDROXY-4,4,4-TRICHLOROBUTYRI&, a chemical compound with the molecular formula C4H6Cl3O2, is an enantiomer of a chiral form of 3-hydroxy-4,4,4-trichlorobutyric acid. This colorless, odorless solid is soluble in water and is recognized for its versatility in various applications, particularly in the synthesis of pharmaceuticals and agrochemicals. However, it is crucial to handle (R)-(-)-3-HYDROXY-4 4 4-TRICHLOROBUTYRI& with care due to its potential health hazards, which include skin and eye irritation and possible respiratory issues if inhaled.

16493-62-2

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16493-62-2 Usage

Uses

Used in Pharmaceutical Synthesis:
(R)-(-)-3-HYDROXY-4,4,4-TRICHLOROBUTYRI& is used as a key intermediate in the pharmaceutical industry for the synthesis of various drugs. Its unique chemical structure allows it to be a valuable building block in the development of new medications.
Used in Agrochemical Synthesis:
In the agrochemical industry, (R)-(-)-3-HYDROXY-4,4,4-TRICHLOROBUTYRI& is utilized as a starting material for the creation of different agrochemicals, such as pesticides and herbicides. Its properties make it suitable for developing effective and targeted solutions for agricultural needs.
Overall, (R)-(-)-3-HYDROXY-4,4,4-TRICHLOROBUTYRI& is a versatile compound with significant applications in both the pharmaceutical and agrochemical industries. However, its potential health hazards necessitate proper handling and safety precautions to ensure the well-being of those who work with it.

Check Digit Verification of cas no

The CAS Registry Mumber 16493-62-2 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,6,4,9 and 3 respectively; the second part has 2 digits, 6 and 2 respectively.
Calculate Digit Verification of CAS Registry Number 16493-62:
(7*1)+(6*6)+(5*4)+(4*9)+(3*3)+(2*6)+(1*2)=122
122 % 10 = 2
So 16493-62-2 is a valid CAS Registry Number.
InChI:InChI=1/C4H3Cl3O2/c5-4(6,7)2-1-3(8)9-2/h2H,1H2/t2-/m1/s1

16493-62-2SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 19, 2017

Revision Date: Aug 19, 2017

1.Identification

1.1 GHS Product identifier

Product name (4R)-4-(Trichloromethyl)-2-oxetanone

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:16493-62-2 SDS

16493-62-2Relevant academic research and scientific papers

Polymeric Cinchona Alkaloids as Catalysts in the Enantioselective 2,2-Cycloaddition Reaction of Ketene and Chloral

Song, Choong Eui,Ryu, Tae Hee,Roh, Eun Joo,Kim, In O,Ha, Hyun-Joon

, p. 1215 - 1218 (1994)

Poly(cinchona alkaloid-co-acrylonitrile) 1a-d and poly(cinchona alkaloid acrylate) 2a-b catalyze the enantioselective cycloaddition of ketene to chloral for the preparation of (R)- and (S)-β-(trichloromethyl)-β-propiolactone.Copolymers 1a-d showed relatively lower catalytic activity with moderate enantioselectivity (22-59percent e.e.), while homopolymers 2a-b gave similar catalytic activity and enantioselectivity (60-94percent e.e.) compared to those of their monomeric alkaloids as catalysts.The polymeric effect was observed with poly(acryloyl quinidine) 2a as catalyst to get the best enantioselectivity of 94percent e.e. at the temperature -30 deg C.

Total Synthesis of Biselide A, A Cytotoxic Macrolide of Marine Origin

Hayakawa, Ichiro,Okamura, Masami,Suzuki, Kazuaki,Shimanuki, Mami,Kimura, Kizuku,Yamada, Takuya,Ohyoshi, Takayuki,Kigoshi, Hideo

, p. 2958 - 2970 (2017/06/27)

The total synthesis of biselide A based on our earlier strategy of synthesizing haterumalides is reported. The highlights of this approach are the use of regioselective enzymatic hydrolysis for the installation of a C20 oxygen functional group and an asymmetric aldol reaction for the stereoselective introduction of a C3 oxygen functional group.

Synthesis of potent CERT inhibitor HPA-12 featuring a tandem corey-link and intramolecular nucleophilic acyl substitution reaction

Snider, Jason R.,Entrekin, Jordan T.,Snowden, Timothy S.,Dolliver, Debra

, p. 1899 - 1903 (2013/07/26)

A novel preparation of the potent CERT protein inhibitor (1R,3S)-HPA-12 is described. The synthesis is accomplished in five steps from (S)-Wynberg lactone and features a diastereoselective tandem Corey-Link and intramolecular nucleophilic acyl substitution reaction in a key step. Georg Thieme Verlag Stuttgart · New York.

Stereoselective synthesis of cis- or trans-2,4-disubstituted butyrolactones from Wynberg lactone

Ganta, Ashok,Shamshina, Julia L.,Cafiero, Lauren R.,Snowden, Timothy S.

experimental part, p. 5396 - 5405 (2012/09/08)

(R)-Wynberg lactone was used to prepare various asymmetric 2,4-disubstituted butyrolactones in three to four steps. Attainment of any possible stereoisomer, based upon commencement from (R)- or (S)-4- trichloromethyl-2-oxetanone, and the capacity to insta

Catalytic asymmetric formation of δ-Lactones from Unsaturated acyl halides

Tiseni, Paolo S.,Peters, Rene

supporting information; experimental part, p. 2503 - 2517 (2010/09/03)

Previously unexplored enantiopure zwitterionic ammonium dienolates have been utilized in this work as reactive intermediates that act as diene components in hetero-Diels-Alder reactions (HDAs) with aldehydes to produce optically active δ-lactones, subunits of numerous bioactive products. The dienolates were generated in situ from E/Z mixtures of a,b- unsaturated acid chlorides by use of a nucleophilic quinidine derivative and Sn (OTf)2 as co-catalyst. The latter component was not directly involved in the cycloaddition step with aldehydes and simply facilitated the formation of the reactive dienolate species. The scope of the cycloaddition was considerably improved by use of a complex formed from Er- (OTf)3 and a simple commercially available norephedrine-derived ligand that tolerated a broad range of aromatic and heteroaromatic aldehydes for a cooperative bifunctional Lewis-acid-/ Lewis-base-catalyzed reaction, providing a,b-unsaturated d-lactones with excellent enantioselectivities. Mechanistic studies confirmed the formation of the dienolate intermediates for both catalytic systems. The active ErIII complex is most likely a monomeric species. Interestingly, all lanthanides can catalyze the title reaction, but the efficiency in terms of yield and enantioselectivity depends directly on the radius of the Ln III ion. Similarly, use of the pseudolanthanides ScIII and YIII also resulted in product formation, whereas the larger La III and other transition metal salts, as well as main group metal salts, proved to be inefficient. In addition, various synthetic transformations of 6- CCl3- or 4-silyl-substituted α,β-unsaturated d-lactones, giving access to a number of valuable δ-lactone building blocks, were investigated.

Asymmetric Synthesis of (S)- and (R)-Malic Acid from Ketene and Chloral

Wynberg, Hans,Staring, Emiel G. J.

, p. 166 - 168 (2007/10/02)

Quinidine (5) catalyzes the addition of ketene (1) to chloral (2) at -50 deg C in toluene.The β-(trichloromethyl)-β-propiolactone 3 is formed virtually optically pure (98percent enantiomeric excess).A mechanism for this reaction, accounting for the high enantiomeric excess, is proposed.Known hydrolytic procedures convert the lactone 3 to malic acid (6).By proper choice of catalyst both (R)- and (S)-malic acid can be obtained optically pure.

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