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35895-70-6

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35895-70-6 Usage

Description

Tetrabutylammonium triflate, also known as Bu4N(CF3SO3), is a quaternary ammonium salt that exists as a white to off-white crystalline powder or in crystalline form. It is a versatile reagent in organic chemistry, known for its effectiveness as a catalyst in various chemical reactions.

Uses

Tetrabutylammonium triflate is used as a catalyst in the chemical industry for a wide range of reactions due to its ability to facilitate and enhance the reaction rates.
Used in Condensation Reactions:
Tetrabutylammonium triflate is used as a catalyst for the condensation of alcohols and carboxylic acids. It helps in the formation of esters from these reactants, which are crucial intermediates in the synthesis of various organic compounds.
Used in Aromatic Compound Reactions:
In the field of organic synthesis, Tetrabutylammonium triflate is used as a catalyst for the reaction of aromatic compounds with sulfonyl chlorides. This reaction is essential for the synthesis of various aromatic sulfonates and sulfonamides.
Used in Cracking of Alkanes:
Tetrabutylammonium triflate is employed as a catalyst in the petroleum industry for the cracking of alkanes. This process breaks down larger hydrocarbon molecules into smaller, more valuable products such as gasoline and diesel.
Used in Alkylation of Alkenes:
In the production of various petrochemicals, Tetrabutylammonium triflate is used as a catalyst for the alkylation of alkenes. This reaction involves the addition of an alkyl group to an alkene, leading to the formation of branched hydrocarbons.
Used in Isomerisation and Trans-Alkylation of Aromatics:
Tetrabutylammonium triflate is utilized as a catalyst in the isomerisation of alkanes and trans-alkylation of aromatics. These processes are vital in the production of high-octane gasoline and the synthesis of various aromatic compounds.
Used in Friedel-Crafts Reactions:
Tetrabutylammonium triflate is also used as a catalyst in Friedel-Crafts reactions, which include trans-bromination and other alkylation reactions. These reactions are essential for the synthesis of various organic compounds, including pharmaceuticals and agrochemicals.

Check Digit Verification of cas no

The CAS Registry Mumber 35895-70-6 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 3,5,8,9 and 5 respectively; the second part has 2 digits, 7 and 0 respectively.
Calculate Digit Verification of CAS Registry Number 35895-70:
(7*3)+(6*5)+(5*8)+(4*9)+(3*5)+(2*7)+(1*0)=156
156 % 10 = 6
So 35895-70-6 is a valid CAS Registry Number.
InChI:InChI=1/C16H36N.C2HF3O2/c1-5-9-13-17(14-10-6-2,15-11-7-3)16-12-8-4;3-2(4,5)1(6)7/h5-16H2,1-4H3;(H,6,7)/q+1;/p-1

35895-70-6 Well-known Company Product Price

  • Brand
  • (Code)Product description
  • CAS number
  • Packaging
  • Price
  • Detail
  • TCI America

  • (T1568)  Tetrabutylammonium Trifluoromethanesulfonate  >98.0%(T)

  • 35895-70-6

  • 10g

  • 880.00CNY

  • Detail
  • TCI America

  • (T1568)  Tetrabutylammonium Trifluoromethanesulfonate  >98.0%(T)

  • 35895-70-6

  • 25g

  • 1,780.00CNY

  • Detail
  • Alfa Aesar

  • (A11013)  Tetra-n-butylammonium trifluoromethanesulfonate, 99%   

  • 35895-70-6

  • 5g

  • 442.0CNY

  • Detail
  • Alfa Aesar

  • (A11013)  Tetra-n-butylammonium trifluoromethanesulfonate, 99%   

  • 35895-70-6

  • 25g

  • 1861.0CNY

  • Detail
  • Alfa Aesar

  • (A11013)  Tetra-n-butylammonium trifluoromethanesulfonate, 99%   

  • 35895-70-6

  • 100g

  • 3849.0CNY

  • Detail
  • Aldrich

  • (86888)  Tetrabutylammoniumtrifluoromethanesulfonate  ≥99.0% (T)

  • 35895-70-6

  • 86888-10G

  • 548.61CNY

  • Detail
  • Aldrich

  • (86888)  Tetrabutylammoniumtrifluoromethanesulfonate  ≥99.0% (T)

  • 35895-70-6

  • 86888-50G

  • 4,539.60CNY

  • Detail

35895-70-6SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 11, 2017

Revision Date: Aug 11, 2017

1.Identification

1.1 GHS Product identifier

Product name Tetra-n-butylammonium trifluoromethanesulfonate

1.2 Other means of identification

Product number -
Other names Trifluoromethanesulfonic Acid Tetrabutylammonium Salt

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:35895-70-6 SDS

35895-70-6Relevant articles and documents

Calcium-Ion Binding Mediates the Reversible Interconversion of Cis and Trans Peroxido Dicopper Cores

Ertem, Mehmed Z.,Harland, Jill B.,Lehnert, Nicolai,Musselman, Bradley W.,Robinson, Jerome R.,Vargo, Natasha P.

, (2021)

Coupled dinuclear copper oxygen cores (Cu2O2) featured in type III copper proteins (hemocyanin, tyrosinase, catechol oxidase) are vital for O2 transport and substrate oxidation in many organisms. μ-1,2-cis peroxido dicoppe

Lewis Acidity Scale of Diaryliodonium Ions toward Oxygen, Nitrogen, and Halogen Lewis Bases

Legault, Claude Y.,Mayer, Robert J.,Mayr, Herbert,Ofial, Armin R.

supporting information, (2020/03/13)

Equilibrium constants for the associations of 17 diaryliodonium salts Ar2I+X- with 11 different Lewis bases (halide ions, carboxylates, p-nitrophenolate, amines, and tris(p-anisyl)phosphine) have been investigated by titrations followed by photometric or conductometric methods as well as by isothermal titration calorimetry (ITC) in acetonitrile at 20 °C. The resulting set of equilibrium constants KI covers 6 orders of magnitude and can be expressed by the linear free-energy relationship lg KI = sI LAI + LBI, which characterizes iodonium ions by the Lewis acidity parameter LAI, as well as the iodonium-specific affinities of Lewis bases by the Lewis basicity parameter LBI and the susceptibility sI. Least squares minimization with the definition LAI = 0 for Ph2I+ and sI = 1.00 for the benzoate ion provides Lewis acidities LAI for 17 iodonium ions and Lewis basicities LBI and sI for 10 Lewis bases. The lack of a general correlation between the Lewis basicities LBI (with respect to Ar2I+) and LB (with respect to Ar2CH+) indicates that different factors control the thermodynamics of Lewis adduct formation for iodonium ions and carbenium ions. Analysis of temperature-dependent equilibrium measurements as well as ITC experiments reveal a large entropic contribution to the observed Gibbs reaction energies for the Lewis adduct formations from iodonium ions and Lewis bases originating from solvation effects. The kinetics of the benzoate transfer from the bis(4-dimethylamino)-substituted benzhydryl benzoate Ar2CH-OBz to the phenyl(perfluorophenyl)iodonium ion was found to follow a first-order rate law. The first-order rate constant kobs was not affected by the concentration of Ph(C6F5)I+ indicating that the benzoate release from Ar2CH-OBz proceeds via an unassisted SN1-type mechanism followed by interception of the released benzoate ions by Ph(C6F5)I+ ions.

Atom transfer radical addition (ATRA) catalyzed by copper complexes with N,N,N′,N′-tetrakis(2-pyridylmethyl)ethylenediamine (TPEN) ligand

Kaur, Aman,Gorse, Erin E.,Ribelli, Thomas G.,Jerman, Callista C.,Pintauer, Tomislav

, p. 246 - 252 (2015/03/04)

Synthesis, characterization, electrochemical studies and ATRA activity of copper complexes with N,N,N′,N′-tetrakis(2-pyridylmethyl)ethylenediamine (TPEN) ligand in the presence of ascorbic acid as a reducing agent were reported. [CuII(TPEN′)Br][Br] (TPEN′ denotes tetracoordinated ligand) catalyst showed a very low activity in ATRA of CBr4 to 1-octene, methyl methacrylate, methyl acrylate and styrene in methanol, which is a typical solvent used for ATRA reactions employing ascorbic acid. On the contrary, the yields and stereoselectivity towards monoadduct formation were dramatically increased in slightly polar but aprotic acetone. Based on molecular structures of isolated [CuII(TPEN)][BPh4] and [CuII(TPEN′)Br][Br] complexes, as well as UV-Vis and cyclic voltammetry studies, an equilibrium was proposed involving inactive [CuII(TPEN)]2+ and ATRP active [CuII(TPEN′)Br]+ cations The halidophilicity of the bromide-based deactivating complex ([CuII(TPEN′)Br][Br]) decreased approximately 750 times upon changing the solvent from acetone (KBr = 3000 ± 230) to methanol (KBr = 4.1 ± 0.1), explaining poor catalytic activity in methanol. In acetone, [CuII(TPEN′)Br][Br] complex was nearly as active in ATRA reactions employing ascorbic acid as previously reported [CuII(TPMA)Br][Br].

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