Welcome to LookChem.com Sign In|Join Free
  • or
n-Butylsulfate, also known as Monobutyl sulfate, is an organic compound with the chemical formula C4H9SO4. It is a colorless liquid that is soluble in water and has a variety of applications across different industries due to its unique properties.

15507-13-8

Post Buying Request

15507-13-8 Suppliers

Recommended suppliers

  • Product
  • FOB Price
  • Min.Order
  • Supply Ability
  • Supplier
  • Contact Supplier

15507-13-8 Usage

Uses

Used in Textile Industry:
n-Butylsulfate is used as a wetting agent in the mercerization process of cotton. Mercerization is a treatment that gives cotton its shiny appearance and also functions to increase its strength. The use of n-Butylsulfate in this process helps to improve the absorption of the mercerizing solution by the cotton fibers, leading to a more uniform and effective treatment.
Used in Chemical Industry:
n-Butylsulfate is also used in the polymerization of tetrahydrofuran (THF), a common monomer used in the production of various polymers and resins. As a catalyst or additive in the polymerization process, n-Butylsulfate helps to control the reaction rate and improve the properties of the resulting polymer, such as its molecular weight and thermal stability.

Check Digit Verification of cas no

The CAS Registry Mumber 15507-13-8 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,5,5,0 and 7 respectively; the second part has 2 digits, 1 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 15507-13:
(7*1)+(6*5)+(5*5)+(4*0)+(3*7)+(2*1)+(1*3)=88
88 % 10 = 8
So 15507-13-8 is a valid CAS Registry Number.
InChI:InChI=1/C4H10O4S/c1-2-3-4-8-9(5,6)7/h2-4H2,1H3,(H,5,6,7)

15507-13-8SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 13, 2017

Revision Date: Aug 13, 2017

1.Identification

1.1 GHS Product identifier

Product name butyl hydrogen sulfate

1.2 Other means of identification

Product number -
Other names sulphuric acid mono-n-butyl ester

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:15507-13-8 SDS

15507-13-8Synthetic route

sulfuric acid dibutyl ester
625-22-9

sulfuric acid dibutyl ester

Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

Conditions
ConditionsYield
With sulfuric acid
butan-1-ol
71-36-3

butan-1-ol

Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

Conditions
ConditionsYield
With sulfuric acid In 1,2-dichloro-ethane at 25℃; Thermodynamic data; ΔH(formation of product);
With chlorosulfonic acid In 1,2-dichloro-ethane at 25℃; Thermodynamic data; ΔH(formation of product);
With propylene glycol; human adrenal hydroxysteroid sulfotransferase (EC 2.8.2.2); PAPS for 0.166667h; Kinetics; Km;
butyl-nitro-amine
3182-75-0

butyl-nitro-amine

Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

Conditions
ConditionsYield
With sulfuric acid at 25 - 85℃; Kinetics; Mechanism; Thermodynamic data; ΔH(excit.), -ΔS(excit.);
sulfuric acid
7664-93-9

sulfuric acid

butan-1-ol
71-36-3

butan-1-ol

Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

butan-1-ol
71-36-3

butan-1-ol

fume.H2SO4

fume.H2SO4

Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

Conditions
ConditionsYield
at 25℃; Equilibrium constant;
butan-1-ol
71-36-3

butan-1-ol

fuming sulfuric acid (20 percent SO3)

fuming sulfuric acid (20 percent SO3)

Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

Conditions
ConditionsYield
bei laengerem Erhitzen auf dem Wasserbad;
butan-1-ol
71-36-3

butan-1-ol

H2SO4 (96.7 percent )

H2SO4 (96.7 percent )

Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

Conditions
ConditionsYield
at 25℃; Equilibrium constant;
Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

diethoxyphosphoryl isocyanate
20039-33-2

diethoxyphosphoryl isocyanate

C9H20NO8PS
287411-39-6

C9H20NO8PS

Conditions
ConditionsYield
In 1,4-dioxane at 15 - 20℃; for 2h; Addition;90%
Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

1-butanethiol
109-79-5

1-butanethiol

Dibutyl sulfide
544-40-1

Dibutyl sulfide

Conditions
ConditionsYield
die alkal.Loesung des Natriumsalzes;
Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

1-ethoxy-1-phenylethane
3299-05-6

1-ethoxy-1-phenylethane

styrene
292638-84-7

styrene

Conditions
ConditionsYield
under 120 Torr;
Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

n-Butyl chloride
109-69-3

n-Butyl chloride

Conditions
ConditionsYield
With hydrogenchloride at 130℃; under 7355.08 Torr;
Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

cinchophen
132-60-5

cinchophen

2-phenyl-quinoline-4-carboxylic acid butyl ester
39496-99-6

2-phenyl-quinoline-4-carboxylic acid butyl ester

Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

6-methyl-2-phenylquinoline-4-carboxylic acid
60538-98-9

6-methyl-2-phenylquinoline-4-carboxylic acid

6-methyl-2-phenyl-quinoline-4-carboxylic acid butyl ester

6-methyl-2-phenyl-quinoline-4-carboxylic acid butyl ester

Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

6,8-dimethyl-2-phenyl-quinoline-4-carboxylic acid
337496-05-6

6,8-dimethyl-2-phenyl-quinoline-4-carboxylic acid

6,8-dimethyl-2-phenyl-quinoline-4-carboxylic acid butyl ester

6,8-dimethyl-2-phenyl-quinoline-4-carboxylic acid butyl ester

Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

butan-1-ol
71-36-3

butan-1-ol

Conditions
ConditionsYield
With sulfuric acid at 32.5℃; Equilibrium constant;
hydrogenchloride
7647-01-0

hydrogenchloride

Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

n-Butyl chloride
109-69-3

n-Butyl chloride

Conditions
ConditionsYield
at 130℃; under 7355.08 Torr;
Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

sodium sulfide

sodium sulfide

Dibutyl sulfide
544-40-1

Dibutyl sulfide

Conditions
ConditionsYield
die alkal.Loesung des Natriumsalzes;
Sulfuric acid monobutyl ester
15507-13-8

Sulfuric acid monobutyl ester

sodium sulfide

sodium sulfide

A

1-butanethiol
109-79-5

1-butanethiol

B

Dibutyl sulfide
544-40-1

Dibutyl sulfide

Conditions
ConditionsYield
bei der Destillation des Natriumsalzes;

15507-13-8Relevant academic research and scientific papers

On the route to the N-phosphoryl sulfamic acid

Mielniczak,Lopusinski

, p. 785 - 791 (2007/10/03)

Synthesis of the previously unknown N-diethyl phosphorosulfamate 15 was accomplished by direct sulfamation of diethyl phosphoroamidate 4 with sulfur trioxide-DMF complex 14. The acid 15 was isolated in form of benzyl-16 and cyclohexylammonium 17 salts, which were found to be unstable in water solution. The other possible routes to sulfamate 15 were briefly tested.

The decomposition of aliphatic N-nitro amines in aqueous sulfuric acid. Bisulfate as a nucleophile

Cox, Robin A.

, p. 1774 - 1778 (2007/10/03)

In aqueous sulfuric acid, aliphatic N-nitro amines decompose to N2O and alcohols. An excess acidity analysis of the observed rate constants for the reaction shows that free carbocations are not formed. The reaction is an acid-catalyzed SN2 displacement from the protonated aci-nitro tautomer, the nucleophile being a water molecule at acidities below 82-85% H2SO4, and a bisulfate ion at higher acidities. Bisulfate is the poorer nucleophile by a factor of about 1000. Twelve compounds were studied, of which results obtained for nine at several different temperatures enabled calculation of activation parameters for both nucleophiles. The reaction appears to be mainly enthalpy controlled. The intercept standard-state rate constants are well correlated by the σ* values for the alkyl groups; the slopes are negative, with a more negative value for the slower bisulfate reaction. Interestingly the m?m* slopes also correlate with σ*, although the scatter is bad.

Influence of substrate structure on the catalytic efficiency of hydroxysteroid sulfotransferase STa in the sulfation of alcohols

Chen, Guangping,Banoglu, Erden,Duffel, Michael W.

, p. 67 - 74 (2007/10/03)

Sulfotransferase a (STa) is an isoform of hydroxysteroid (alcohol) sulfotransferase that catalyzes the formation of sulfuric acid esters from both endogenous and xenobiotic alcohols. Among its various functions in toxicology, STa is the major form of hepatic sulfotransferase in the rat that catalyzes the formation of genotoxic and carcinogenic sulfuric acid esters from hydroxymethyl polycyclic aromatic hydrocarbons. The goal of the present study was to elucidate fundamental quantitative relationships between substrate structure and catalytic activity of STa that would be applicable to these and other xenobiotics. We have modified previous procedures for purification of STa in order to obtain sufficient amounts of homogeneous enzyme for determination of k(cat)/K(m) values, a quantitative measure of catalytic efficiency. We determined the catalytic efficiency of STa with benzyl alcohol and eight benzylic alcohols that were substituted with n- alkyl groups (C(n)H(2n+1), where n = 1-8) in the para position, and the optimum value for k(cat)/K(m) in these reactions was obtained with n- pentylbenzyl alcohol. Correlations between logarithms of k(cat)/K(m) values and logarithms of partition coefficients revealed that hydrophobicity of the substrate was a major factor contributing to the catalytic efficiency of STa. Primary n-alkanols (C(n)H(2n+1)OH, where n = 3-16) exhibited an optimum k(cat)/K(m) for C9-C11 and a linear decrease in v(max) of the reaction for C3-C14; 15- and 16-carbon n-alkanols were not substrates for STa. These results indicated limits to the length of the extended carbon chain in substrates. Such limits may also apply to hydroxysteroids, since cholesterol was inactive as either substrate or inhibitor of STa. Furthermore, the importance of steric effects on the catalytic efficiency of STa was also evident with a series of linear, branched, and cyclic seven-carbon aliphatic alcohols. In conclusion, our results provide fundamental quantitative relationships between substrate structure and catalytic efficiency that yield insight into the specificity of STa for both endogenous and xenobiotic alcohols.

KINETICS OF THE REACTION OF n-BUTANOL WITH CONCENTRATED SULFURIC ACID.

Savel'yanov,Yakushin

, p. 1523 - 1527 (2007/10/02)

The kinetics of the reaction of n-butanol with concentrated sulfuric acid of various intrinsic concentrations was studied over a wide range of strictly controlled conditions, and it was shown that the reaction is satisfactorily described by a kinetic equation for a reversible second-order reaction. An exponential relationship was found between the rate constants of the forward and reverse reactions and the sulfuric acid concentration in the original mixture, due to the similar dependence of the Hammett acidity function of the reaction mixture, which does not alter significantly in the course of the reaction.

ENZYMIC SYNTHESIS OF STEROID SULFATES XVI. SPECIFICITY AND REGULATION OF HUMAN ADRENAL HYDROXYSTEROID SULFOTRANSFERASE

Adams, J. B.,McDonald, D.

, p. 575 - 586 (2007/10/02)

Pure hydroxysteroid sulfotransferase (EG 2.8.2.2) of human adrenal glands possesses a wide substrate specificity towards steroids.This wide specificity has now been found to extend to simple alcohols; normal aliphatic alcohols from C3 onwards acting as substrates with C9 showing the highest rate.Increased rate was accompanied by a decrease in Km.In marked contrast to the sulfurylation of steroids such as dehydroepiandrosterone, which exhibit wave-like kinetics, the kinetics with simple alcohols were of the normal Michaelis-Menten type.By means of enzyme antibody and enzyme stability studies evidence was provided that one and the same enzyme was responsible for sulfurylation of hydroxyls on the 3- and 17-positions of steroids and simple alcohols.The data lend support to previous evidence that the enzyme controls the secretion of dehydroepiandrosterone sulfate via steroid-specific binding sites, enabling self-regulation in response to ACTH action.

Post a RFQ

Enter 15 to 2000 letters.Word count: 0 letters

Attach files(File Format: Jpeg, Jpg, Gif, Png, PDF, PPT, Zip, Rar,Word or Excel Maximum File Size: 3MB)

1 Customer Service

What can I do for you?
Get Best Price

Get Best Price for 15507-13-8