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Pyridinium trifluoromethanesulfonate, commonly known as pyridinium triflate, is a versatile and efficient catalyst used in various chemical reactions. It is an ionic compound with the chemical formula C5H5N(SO2CF3), where the cation is a pyridinium ion and the anion is a trifluoromethanesulfonate ion. Pyridinium triflate is known for its ability to facilitate a wide range of chemical transformations, making it a valuable tool in synthetic chemistry.

52193-54-1

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52193-54-1 Usage

Uses

Used in Organic Synthesis:
Pyridinium trifluoromethanesulfonate is used as a catalyst in organic synthesis for various reactions, including the silylation of alcohols when used in conjunction with silylbenzamide. This versatile reagent aids in the conversion of alcohols into their corresponding silyl ethers, which are important intermediates in organic chemistry.
Used in Condensation Reactions:
In the pharmaceutical and chemical industries, pyridinium trifluoromethanesulfonate is used as a catalyst for the condensation of alcohols and carboxylic acids. This reaction is crucial for the formation of esters, which are key components in the synthesis of various drugs, fragrances, and other chemical products.
Used in Aromatic Compound Reactions:
Pyridinium triflate is employed as a catalyst in the reaction of aromatic compounds with sulfonyl chlorides. This reaction is essential for the synthesis of sulfonamides, which are a class of compounds with significant applications in the pharmaceutical industry as antimicrobial agents.
Used in Cracking of Alkanes:
In the petrochemical industry, pyridinium trifluoromethanesulfonate is used as a catalyst for the cracking of alkanes. This process involves breaking down larger hydrocarbon molecules into smaller, more valuable products such as olefins, which are used as building blocks for the production of plastics and other materials.
Used in Alkylation and Isomerisation Reactions:
Pyridinium trifluoromethanesulfonate is used as a catalyst in the alkylation of alkenes and the isomerisation of alkanes. These reactions are important in the production of various chemicals and materials, including polymers, detergents, and lubricants.
Used in Friedel-Crafts Reactions:
In the chemical industry, pyridinium triflate is used as a catalyst for Friedel-Crafts reactions, which involve the electrophilic substitution of aromatic compounds. These reactions are essential for the synthesis of a wide range of organic compounds, including pharmaceuticals, agrochemicals, and dyes.

Check Digit Verification of cas no

The CAS Registry Mumber 52193-54-1 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 5,2,1,9 and 3 respectively; the second part has 2 digits, 5 and 4 respectively.
Calculate Digit Verification of CAS Registry Number 52193-54:
(7*5)+(6*2)+(5*1)+(4*9)+(3*3)+(2*5)+(1*4)=111
111 % 10 = 1
So 52193-54-1 is a valid CAS Registry Number.
InChI:InChI=1/C5H5N.CHF3O3S/c1-2-4-6-5-3-1;2-1(3,4)8(5,6)7/h1-5H;(H,5,6,7)

52193-54-1 Well-known Company Product Price

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  • Aldrich

  • (452300)  Pyridiniumtrifluoromethanesulfonate  97%

  • 52193-54-1

  • 452300-5G

  • 504.27CNY

  • Detail

52193-54-1SDS

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 pyridin-1-ium,trifluoromethanesulfonate

1.2 Other means of identification

Product number -
Other names pyridine*HOTf

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:52193-54-1 SDS

52193-54-1Relevant academic research and scientific papers

PhICl2is activated by chloride ions

Tania,Poynder, Tiffany B.,Kaur, Aishvaryadeep,Barwise, Lachlan,Houston, Sevan D.,Nair, Akshay J.,Clegg, Jack K.,Wilson, David J. D.,Dutton, Jason L.

supporting information, p. 11986 - 11991 (2021/09/06)

A study on the potential activating role of pyridine in the electrophilic chlorination of anisole by PhICl2has led to the discovery that soluble sources of chloride ions activate PhICl2in the reaction at catalytic loadings, greatly increasing the rate of chlorination. It is further shown that presence of chloride increases the rate of decomposition of PhICl2into PhI and Cl2. The specific mechanism by which chloride induces electrophilic chlorination and decomposition of PhICl2remains an open question.

UIII-CN versus UIV-NC coordination in tris(silylamide) complexes

Hervé, Alexandre,Bouzidi, Yamina,Berthet, Jean-Claude,Belkhiri, Lotfi,Thuéry, Pierre,Boucekkine, Abdou,Ephritikhine, Michel

, p. 2474 - 2490 (2015/03/18)

Treatment of the metallacycle [UN?2(N,C)] [N? = N(SiMe3)2; N,C = CH2SiMe2N(SiMe3)] with [HNEt3][BPh4], [HNEt3]Cl, and [pyH][OTf] (OTf = OSO2CFsu

Cycloadditions of siloxy alkynes with 1,2-diazines: From reaction discovery to identification of an antiglycolytic chemotype

Montavon, Timothy J.,Tuerkmen, Yunus E.,Shamsi, Noumaan A.,Miller, Christopher,Sumaria, Chintan S.,Rawal, Viresh H.,Kozmin, Sergey A.

supporting information, p. 13576 - 13579 (2014/01/06)

Cycloaddition uncovered: The title reaction produces novel polycyclic compounds with high efficiency and excellent diastereoselectivity under mild reaction conditions. A small-molecule library, synthesized using this reaction, yielded a novel chemotype which inhibited glycolytic ATP production by blocking glucose uptake in CHO-K1 cells. DMF=N,N-dimethylformamide, Tf= trifluoromethanesulfonyl, TIPS=triisopropylsilyl. Copyright

1,2-azaborine cations

Marwitz, Adam J. V.,Jenkins, Jesse T.,Zakharov, Lev N.,Liu, Shih-Yuan

supporting information; experimental part, p. 7444 - 7447 (2010/11/20)

Positively brilliant: The first examples of 1,2-azaborine cations have been prepared and their structure and optoelectronic properties characterized (see picture). 1,2-Azaborine cations exhibit solid-state fluorescence that is distinct from their neutral all-carbon analogues, and the 1,2-azaborine moiety is a critical component for the optoelectronic properties. There is a potential for the utility of these complexes in materials applications.

Helquats: A facile, modular, scalable route to novel helical dications

Adriaenssens, Louis,Severa, Lukas,Salova, Tereza,Cisarova, Ivana,Pohl, Radek,Saman, David,Rocha, Silvia V.,Finney, Nathaniel S.,Pospisil, Lubomir,Slavicek, Petr,Teply, Filip

supporting information; experimental part, p. 1072 - 1076 (2009/10/21)

The synthesis and properties of helical extended diquat (helquat), and derivatives that bear resemblance to diquat and azoniahelicene, was reported. Triyne with elongated tethers connecting the heterocyclic moiety with the pendant alkyne functionalities u

Penta-or tetrapeptide binding to somatostatin receptors and the use of the same

-

, (2008/06/13)

The subject matter of the present invention is a cyclic or linear tetra- or pentapeptide binding to somatostatin receptors. The compounds of the invention are characterised in that they contain the radical of an amino carboxylic acid bearing a five-membered ring in the peptide backbone which may optionally contain O, S, Se, N, or P. These compounds are easy to prepare and display increased stability against peptidases. The compounds of the present invention induce apoptosis of tumour cells and the use of said compounds for cancer therapy is described. In particular, the compounds are characterised in that they are active even against tumour cells displaying resistance against other somatostatin derivatives such as octreotide. In addition, the use of the compounds of the invention for tumour diagnosis by means of positron-emission tomography is described, as well as their use as agents against neurogenic inflammation.

Antiinflammation agents

-

, (2008/06/13)

Compounds, compositions and methods that are useful in the treatment of inflammatory, immunoregulatory, metabolic and cell proliferative conditions or diseases are provided herein. In particular, the invention provides compounds which modulate the expression and/or function of proteins involved in inflammation, metabolism and cell proliferation. The subject compounds contain fused carbocyclic or heterocyclic rings.

Reaction of N-fluoropyridinium salts with Wittig reagents: A novel and convenient approach to symmetric trans-olefins

Kiselyov, Alexander S.

, p. 8951 - 8954 (2007/10/02)

N-Fluoropyridinium salts were found to react with Wittig reagents containing electron-withdrawing groups to give olefins in 47-83% yield. The mechanism of this conversion is believed in involve single-electron transfer from Wittig reagent to N-fluoropyridinium cation.

Preparation of homo- and heterobimetallic μ-η2-(C,C)-ketene complexes, FpCH2COMLn, and transformation of the bridging ketene ligand into various C2 functional groups

Akita, Munetaka,Kondoh, Atsuo,Kawahara, Takashi,Takagi, Takenobu,Moro-oka, Yoshihiko

, p. 366 - 374 (2008/10/08)

Eight examples of homo- and heterobimetallic μ-ketene complexes, FpCH2COMLn [3-7: Fp = (η5-C5H5)Fe(CO)2; M = Fe, Mo, Ni, Mn, Co; L = Cp, CO, PR3], are prepared by acylation of an iron-substituted acetyl chloride with various transition-metal anions. IR studies reveal the significant contribution of a π-complex Fp+[CH2=C(O-)Fp] (10) in addition to an oxycarbene structure FpCH2C(O-)=Fp+ (11) which is well-established for mononuclear acyl complexes. As a typical example, FpCH2COFp (3a) is subjected to chemical transformations relevant to catalytic CO hydrogenation. While 3a is not susceptible to carbonylation to lead to a μ-malonyl complex, decarbonylation results in quantitative liberation of ketene molecule or ligand substitution instead of formation of a μ-methylene complex. Reduction of 3a by LiAlH4 affords C3 products as major components. Reaction of 3a with electrophiles takes place at the acyl oxygen atom to give cationic binuclear oxycarbene complexes FpCH2C(OR)=Fp+TfO- (TfO = CF3SO3) (18-20) which exhibit bimodal reactivities toward both nucleophiles and electrophiles. Hard nucleophiles attack the most electrophilic carbene center, soft nucleophiles attack the alkyl side Fp group, and electrophilic reaction takes place at the methylene terminus.

TRIFLUOROMETHANESULPHONIC ACID AS A CATALYST FOR THE ETHYLATION OF BENZENE

Booth, Brian L.,Al-Kinany, Mohammed,Laali, Khosrow

, p. 2049 - 2056 (2007/10/02)

At room temperature and a pressure of ethene of 1 atm, anhydrous trifluoromethanesulfonic (triflic) acid is a more effective catalyst for the ethylation of benzene than AlCl3, FSO3H, and anhydrous H2SO4.It has an activity comparable to that found for a 1:1 mixture of FSO3H-SbF5, and under the most favourable conditions the yield of ethylbenzene is ca. 38percent based on the amount of benzene reacted.Although the initial rate of ethylation is rapid, the raction effectively ceases after 30-60 min depending on the reaction conditions.The reason for this has mainly been shown to be strong complexation of the triflic acid to polyethylbenzene derivatives in the catalyst layer, but also, in part to the competing formation of ethyl triflate, wich is inactive as an ethylating agent under the conditions used.

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