Welcome to LookChem.com Sign In|Join Free

CAS

  • or

108-43-0

Post Buying Request

108-43-0 Suppliers

Recommended suppliersmore

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

108-43-0 Usage

Chemical Properties

White to light yellow crystal.

Uses

Different sources of media describe the Uses of 108-43-0 differently. You can refer to the following data:
1. 3-Chlorophenol is a halophenol with antifungal activity. 3-Chlorophenol is commonly used as a building block in the preparation of variety of biologically active compounds. Studies suggest that 3-Chlo rophenol can be used in the regeneration of vegetal activated carbons.
2. 3-Chlorophenol is widely used in the pharmaceutical, dyes and organic synthesis industry. It is an important intermediate in the synthesis of chemicals.
3. 3-Chlorophenol is generally used in building various polycyclic aromatic systems. It is also employed in palladium-catalyzed coupling reactions to synthesize aryl intermediates in synthetic organic chemistry.

General Description

White crystals with an odor of phenol. Sinks in and slowly dissolves in water.

Air & Water Reactions

Discolors on exposure to air. Water soluble

Reactivity Profile

3-Chlorophenol is incompatible with acid chlorides, acid anhydrides and oxidizing agents .

Hazard

Toxic by skin absorption, inhalation, or ingestion.

Fire Hazard

3-Chlorophenol is probably combustible.

Safety Profile

Poison by intraperitoneal route. Moderately toxic by ingestion and subcutaneous routes. Questionable carcinogen with experimental tumorigenic data by skin contact. Mutation data reported. Flammable or combustible liquid. When heated to decomposition it emits toxic fumes of Cl-. See also CHLOROPHENOLS.

Purification Methods

It could not be obtained solid by crystallisation from pet ether. It is best purified by distillation under reduced pressure. [Beilstein 6 IV 810.]

Check Digit Verification of cas no

The CAS Registry Mumber 108-43-0 includes 6 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 3 digits, 1,0 and 8 respectively; the second part has 2 digits, 4 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 108-43:
(5*1)+(4*0)+(3*8)+(2*4)+(1*3)=40
40 % 10 = 0
So 108-43-0 is a valid CAS Registry Number.
InChI:InChI:1S/C6H5ClO/c7-5-2-1-3-6(8)4-5/h1-4,8H

108-43-0 Well-known Company Product Price

  • Brand
  • (Code)Product description
  • CAS number
  • Packaging
  • Price
  • Detail
  • Alfa Aesar

  • (A13671)  3-Chlorophenol, 98+%   

  • 108-43-0

  • 50g

  • 674.0CNY

  • Detail
  • Alfa Aesar

  • (A13671)  3-Chlorophenol, 98+%   

  • 108-43-0

  • 100g

  • 1113.0CNY

  • Detail
  • Alfa Aesar

  • (A13671)  3-Chlorophenol, 98+%   

  • 108-43-0

  • 250g

  • 2649.0CNY

  • Detail
  • Alfa Aesar

  • (A13671)  3-Chlorophenol, 98+%   

  • 108-43-0

  • 1000g

  • 9007.0CNY

  • Detail
  • Sigma-Aldrich

  • (36747)  3-Chlorophenol  PESTANAL®, analytical standard

  • 108-43-0

  • 36747-1G

  • 179.01CNY

  • Detail

108-43-0SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 10, 2017

Revision Date: Aug 10, 2017

1.Identification

1.1 GHS Product identifier

Product name 3-chlorophenol

1.2 Other means of identification

Product number -
Other names m-Chlorophenol

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:108-43-0 SDS

108-43-0Synthetic route

1-tert-butoxy-3-chlorobenzene
123195-73-3

1-tert-butoxy-3-chlorobenzene

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With sodium iodide; cerium(III) chloride In acetonitrile at 40℃; for 3.5h;100%
1-(benzyloxy)-3-chlorobenzene
24318-02-3

1-(benzyloxy)-3-chlorobenzene

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With 1-n-butyl-3-methylimidazolim bromide at 200 - 220℃; for 0.0833333h; Microwave irradiation; Inert atmosphere;99%
With triethylsilane; triethylamine; palladium diacetate In dichloromethane at 23℃; for 12h; Hydrogenolysis;
2,3-dichlorophenol
576-24-9

2,3-dichlorophenol

A

3-monochlorophenol
108-43-0

3-monochlorophenol

B

phenol
108-95-2

phenol

Conditions
ConditionsYield
With 9,10-dihydroanthracene; water at 356.85℃; for 3h; Kinetics;A 99%
B 0.3%
1-bromo-3-chlorobenzene
108-37-2

1-bromo-3-chlorobenzene

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With potassium hydroxide; tris-(dibenzylideneacetone)dipalladium(0); tert-butyl XPhos In 1,4-dioxane; water at 100℃; for 1h;99%
Multi-step reaction with 2 steps
1: copper dichloride; potassium carbonate / 20 h / 130 °C / Inert atmosphere; Schlenk technique
2: potassium hydroxide / dimethyl sulfoxide / 3 h / 100 °C / Schlenk technique
View Scheme
Multi-step reaction with 2 steps
1: fac-tris(2-phenylpyridinato-N,C2')iridium(III); tributyl-amine; water / acetonitrile / 36 h / 25 °C / Schlenk technique; Inert atmosphere; Sealed tube; Irradiation
2: air / 16 h / 25 °C / Inert atmosphere
View Scheme
With copper(l) iodide; C20H20N4O4; caesium carbonate; Benzaldoxime In dimethyl sulfoxide at 80℃; for 18h; Inert atmosphere; Glovebox;
3-chlorophenylboronic acid
63503-60-6

3-chlorophenylboronic acid

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With water In tetrahydrofuran at 100℃; for 12h;99%
With copper(I) oxide; potassium hydroxide In water at 20℃; for 24h; Green chemistry;98%
With copper(II) ferrite; water; sodium hydroxide at 40℃; for 24h; Green chemistry;96%
1-chloro-3-ethoxybenzene
2655-83-6

1-chloro-3-ethoxybenzene

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With 1-n-butyl-3-methylimidazolim bromide at 200 - 220℃; for 0.666667h; Microwave irradiation; Inert atmosphere;99%
2-(3-chlorophenoxy)ethanol
6161-83-7

2-(3-chlorophenoxy)ethanol

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With potassium hydroxide In dimethyl sulfoxide at 100℃; for 3h; Schlenk technique;99%
3-iodochlorobenzene
625-99-0

3-iodochlorobenzene

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With glycolic Acid; copper hydroxide; sodium hydroxide In water; dimethyl sulfoxide at 120℃; for 6h; Inert atmosphere; Schlenk technique;98%
With copper acetylacetonate; N1-(4-hydroxy-2,6-dimethylphenyl)-N2-(4-hydroxy-3,5-dimethylphenyl)oxalamide; potassium hydroxide In water; dimethyl sulfoxide at 60℃; for 24h; Schlenk technique; Inert atmosphere; chemoselective reaction;95%
With copper(I) oxide; 2-(N,N-dimethylamino)ethanol; water; potassium hydroxide In dimethyl sulfoxide at 110℃; for 24h; Inert atmosphere;91%
3-chlorophenylboronic acid
63503-60-6

3-chlorophenylboronic acid

dihydrogen peroxide
7722-84-1

dihydrogen peroxide

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With ammonium bicarbonate In water at 20℃; for 2h; Schlenk technique;97%
1-chloro-3-vinyloxybenzene
1005-41-0

1-chloro-3-vinyloxybenzene

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With [2,2]bipyridinyl; (1,2-dimethoxyethane)dichloronickel(II); water; bis(pinacol)diborane; lithium tert-butoxide In methanol; N,N-dimethyl acetamide at 30℃; for 24h; Schlenk technique;92%
With 6,6'-dimethyl-2,2'-bipyridine; (1,2-dimethoxyethane)dichloronickel(II); bis(pinacol)diborane; lithium tert-butoxide In methanol; N,N-dimethyl acetamide; water at 30℃; for 24h; Inert atmosphere; Glovebox; Sealed tube;92%
1-chloro-3-(2-phenylallyloxy)benzene

1-chloro-3-(2-phenylallyloxy)benzene

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With tert.-butyl lithium In tetrahydrofuran; pentane at -78℃; for 0.5h;91%
(1S,2S)-3-Chloro-cyclohexa-3,5-diene-1,2-diol
86992-79-2, 98575-77-0, 65986-73-4

(1S,2S)-3-Chloro-cyclohexa-3,5-diene-1,2-diol

A

3-monochlorophenol
108-43-0

3-monochlorophenol

B

2-monochlorophenol
95-57-8

2-monochlorophenol

Conditions
ConditionsYield
With sodium hydroxide In water at 25℃; Kinetics; Concentration; Solvent;A 89%
B n/a
3-chlorophenyl N,N-diethylcarbamate
159390-33-7

3-chlorophenyl N,N-diethylcarbamate

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With zirconocene dichloride In tetrahydrofuran at 20℃; Inert atmosphere;88%
3-fluorophenol
372-20-3

3-fluorophenol

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
85%
chlorobenzene
108-90-7

chlorobenzene

A

3-monochlorophenol
108-43-0

3-monochlorophenol

B

2-monochlorophenol
95-57-8

2-monochlorophenol

Conditions
ConditionsYield
With [Ni(N,N-bis(4-methoxy-3,5-dimethylpyridin-2-ylmethyl)-N',N'-dimethylpropane-1,3-diamine)(CH3CN)2](Ph4B)2; dihydrogen peroxide; triethylamine In water; acetonitrile at 60℃; for 5h;A 16%
B 84%
With C25H29N7O*Fe(2+)*2CF3O3S(1-); dihydrogen peroxide
With dihydrogen peroxide; C23H37ClCuN4O6(1+)*ClO4(1-); triethylamine In acetonitrile at 60℃; for 5h;
3-Chlorobenzaldehyde
587-04-2

3-Chlorobenzaldehyde

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
Stage #1: m-Chlorobenzaldehyde With 3-chloro-benzenecarboperoxoic acid for 0.0833333h; Dakin oxidation;
Stage #2: With sodium hydroxide for 0.0833333h; Further stages.;
80%
1-(but-3-enyloxy)-3-chlorobenzene
1314570-58-5

1-(but-3-enyloxy)-3-chlorobenzene

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With [2,2]bipyridinyl; (1,2-dimethoxyethane)dichloronickel(II); water; bis(pinacol)diborane; lithium tert-butoxide In methanol; N,N-dimethyl acetamide at 30℃; for 24h; Schlenk technique;75%
With 6,6'-dimethyl-2,2'-bipyridine; (1,2-dimethoxyethane)dichloronickel(II); bis(pinacol)diborane; lithium tert-butoxide In methanol; N,N-dimethyl acetamide; water at 30℃; for 24h; Inert atmosphere; Glovebox; Sealed tube;75%
3-chloro-aniline
108-42-9

3-chloro-aniline

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
Stage #1: 3-chloro-aniline With sodium nitrite In water at 20℃; Milling; Green chemistry;
Stage #2: With water at 85℃; for 0.5h; Neutral conditions; Green chemistry;
73%
With uranyl nitrate hydrate; water; trifluoroacetic acid for 48h; Irradiation;56%
diethyl phosphite potassium salt
54058-00-3

diethyl phosphite potassium salt

3-chloro-1-trifluoromethanesulfonyloxybenzene
86364-03-6

3-chloro-1-trifluoromethanesulfonyloxybenzene

A

3-monochlorophenol
108-43-0

3-monochlorophenol

B

3-chlorophenyl diethyl phosphate
32019-36-6

3-chlorophenyl diethyl phosphate

Conditions
ConditionsYield
In ammonia at -33℃; under 2.5 Torr;A 30%
B 67%
2,5-dichlorophenol
583-78-8

2,5-dichlorophenol

A

3-monochlorophenol
108-43-0

3-monochlorophenol

B

phenol
108-95-2

phenol

Conditions
ConditionsYield
With 9,10-dihydroanthracene; water at 356.85℃; for 3h; Kinetics;A 62%
B 0.3%
α-(3-Chlorophenoxy)acetophenone
19514-06-8

α-(3-Chlorophenoxy)acetophenone

A

3-monochlorophenol
108-43-0

3-monochlorophenol

B

2-oxo-2-phenyl-ethyl
50781-28-7

2-oxo-2-phenyl-ethyl

C

2-(3-chlorophenyl)-1-phenylethanone
27798-43-2

2-(3-chlorophenyl)-1-phenylethanone

D

3-chlorophenoxyl radical
54560-44-0

3-chlorophenoxyl radical

E

acetophenone
98-86-2

acetophenone

Conditions
ConditionsYield
thiophenol In benzene Product distribution; Quantum yield; Kinetics; Irradiation;A 34.2%
B n/a
C 42.1%
D n/a
E 23.8%
chlorobenzene
108-90-7

chlorobenzene

A

3-monochlorophenol
108-43-0

3-monochlorophenol

B

2-monochlorophenol
95-57-8

2-monochlorophenol

C

4-chloro-phenol
106-48-9

4-chloro-phenol

D

phenol
108-95-2

phenol

Conditions
ConditionsYield
With KCu(III)(biuret)2; water; trifluoroacetic acid for 2h; Product distribution; Heating;A n/a
B 6%
C 7%
D 33%
With tert.-butylhydroperoxide; air In gas at 290℃; under 760 Torr; Product distribution; Mechanism;
In tert-butyl alcohol at 488 - 587℃; under 760 Torr; Mechanism; Slow combustion of dichlorobenzene has been studied at low degrees of conversion at low degrees of conversion, in athmospheric pressure, between 410-1053 K , in various solvents.;
cyclohexa-1,3-diene at 570 - 622℃; under 760 Torr; Mechanism;
With air at 686.85℃; Formation of xenobiotics; Further byproducts given. Title compound not separated from byproducts;
3-chlorobenzenediazonium
17333-84-5

3-chlorobenzenediazonium

3-monochlorophenol
108-43-0

3-monochlorophenol

3-chloro-aniline
108-42-9

3-chloro-aniline

A

3-monochlorophenol
108-43-0

3-monochlorophenol

B

PCB 11
2050-67-1

PCB 11

Conditions
ConditionsYield
With sulfuric acid Diazotization.Behandlung der Diazoniumsalz-Loesung mit CuOH;
1,3-Dichlorobenzene
541-73-1

1,3-Dichlorobenzene

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With sodium hydroxide at 260℃;
With sodium hydroxide at 200℃;
With methanol; sodium methylate at 180℃;
With sodium methylate; sodium thiomethoxide 1.) HMPA, 120 degC, 2h; 2.) 120 degC, 1h; Yield given. Multistep reaction;
2,2,2-trifluoroethanol
75-89-8

2,2,2-trifluoroethanol

(3-Chloro-phenoxy)-dimethyl-phenyl-silane

(3-Chloro-phenoxy)-dimethyl-phenyl-silane

A

3-monochlorophenol
108-43-0

3-monochlorophenol

B

(2,2,2-trifluoroethoxy)dimethylphenylsilane
109629-96-1

(2,2,2-trifluoroethoxy)dimethylphenylsilane

Conditions
ConditionsYield
With potassium 2,2,2-trifluoroethoxide at 30℃; Rate constant; μ = 0.05 M with potassium trifluoroacetate;
4-chloro-2-hydroxybenzophenone
2985-80-0

4-chloro-2-hydroxybenzophenone

A

3-monochlorophenol
108-43-0

3-monochlorophenol

B

3-chlorophenyl benzoate
13189-55-4

3-chlorophenyl benzoate

Conditions
ConditionsYield
trifluorormethanesulfonic acid In 1,2-dichloro-ethane at 170℃; for 24h; Mechanism; Product distribution; in dependence on concentration of TFMS, time;A 5.1 % Chromat.
B 47.7 % Chromat.
1-chloro-3-methylbenzene
108-41-8

1-chloro-3-methylbenzene

A

3-monochlorophenol
108-43-0

3-monochlorophenol

B

m-chlorobenzyl alcohol
873-63-2

m-chlorobenzyl alcohol

C

3-Chlorobenzaldehyde
587-04-2

3-Chlorobenzaldehyde

D

3-chlorobenzoate
535-80-8

3-chlorobenzoate

Conditions
ConditionsYield
With water; iron; trifluoroacetic acid In acetone for 1h; Rate constant;
With water; iron; trifluoroacetic acid In pyridine for 1h; Rate constant;
With water; copper; trifluoroacetic acid In pyridine for 1h; Rate constant;
With water; copper; trifluoroacetic acid In acetone for 1h; Rate constant;
3-chlorophenyl acetate
13031-39-5

3-chlorophenyl acetate

3-monochlorophenol
108-43-0

3-monochlorophenol

Conditions
ConditionsYield
With N-butylamine; Tetraethylene glycol dimethyl ether In chlorobenzene at 25℃; Rate constant; efficacy of glyme catalysis, other glymes;
With potassium chloride; poly(ethyleneimine) In water at 25℃; Rate constant; Mechanism; Product distribution; various pH, aminolysis;
3-monochlorophenol
108-43-0

3-monochlorophenol

(2E)-3-ethoxyprop-2-enoyl chloride
6191-99-7, 99471-66-6

(2E)-3-ethoxyprop-2-enoyl chloride

3-Ethoxyacrylsaeure-3-chlorphenylester
105786-77-4

3-Ethoxyacrylsaeure-3-chlorphenylester

Conditions
ConditionsYield
In 1,2-dichloro-ethane for 14h; Heating;100%
3-monochlorophenol
108-43-0

3-monochlorophenol

propargyl bromide
106-96-7

propargyl bromide

1-chloro-3-(prop-2-yn-1-yloxy)benzene
33302-52-2

1-chloro-3-(prop-2-yn-1-yloxy)benzene

Conditions
ConditionsYield
With potassium carbonate In acetone Reflux;100%
With potassium carbonate In N,N-dimethyl-formamide; toluene at 60℃; for 16h; Sealed tube; Inert atmosphere;95%
With potassium carbonate In acetone at 56℃;93%
3-monochlorophenol
108-43-0

3-monochlorophenol

N,N-diethylcarbamyl chloride
88-10-8

N,N-diethylcarbamyl chloride

3-chlorophenyl N,N-diethylcarbamate
159390-33-7

3-chlorophenyl N,N-diethylcarbamate

Conditions
ConditionsYield
With potassium carbonate In acetonitrile at 70℃; for 13.5h;100%
Stage #1: 3-monochlorophenol With sodium hydride In tetrahydrofuran; mineral oil at 23℃; for 1h; Inert atmosphere;
Stage #2: N,N-diethylcarbamyl chloride In tetrahydrofuran; mineral oil at 23℃; for 16h; Inert atmosphere;
94%
Stage #1: 3-monochlorophenol With sodium hydride In tetrahydrofuran for 1.16667h;
Stage #2: N,N-diethylcarbamyl chloride In tetrahydrofuran at 20℃; for 14h;
93%
3-monochlorophenol
108-43-0

3-monochlorophenol

3-chloro-4-fluoronitrobenzene
350-30-1

3-chloro-4-fluoronitrobenzene

2-chloro-1-(3-chlorophenoxy)-4-nitrobenzene
500540-67-0

2-chloro-1-(3-chlorophenoxy)-4-nitrobenzene

Conditions
ConditionsYield
Stage #1: 3-monochlorophenol; 3-chloro-4-fluoronitrobenzene With caesium carbonate In N,N-dimethyl-formamide; acetonitrile at 20℃;
Stage #2: With water In N,N-dimethyl-formamide; acetonitrile
100%
With potassium carbonate In N,N-dimethyl-formamide at 80℃; for 2h;
3-monochlorophenol
108-43-0

3-monochlorophenol

benzyl 3-[4-(5-methanesulfonyloxazolo[5,4-d]pyrimidin-2-yl)-2,6-dimethylphenoxy]cyclobutanecarboxylate
1417617-96-9

benzyl 3-[4-(5-methanesulfonyloxazolo[5,4-d]pyrimidin-2-yl)-2,6-dimethylphenoxy]cyclobutanecarboxylate

benzyl 3-{4-[5-(3-chlorophenoxy)oxazolo[5,4-d]pyrimidin-2-yl]-2,6-dimethylphenoxy}cyclobutanecarboxylate
1417617-97-0

benzyl 3-{4-[5-(3-chlorophenoxy)oxazolo[5,4-d]pyrimidin-2-yl]-2,6-dimethylphenoxy}cyclobutanecarboxylate

Conditions
ConditionsYield
With potassium carbonate In N,N-dimethyl-formamide at 20 - 60℃; for 5.5h;100%
3-monochlorophenol
108-43-0

3-monochlorophenol

4-Fluoronitrobenzene
350-46-9

4-Fluoronitrobenzene

1-chloro-3-(4-nitrophenoxy)benzene
2303-23-3

1-chloro-3-(4-nitrophenoxy)benzene

Conditions
ConditionsYield
With cesium fluoride/clinoptilolite In dimethyl sulfoxide at 110℃; for 0.15h; Ullmann Condensation;100%
With potassium carbonate In dimethyl sulfoxide at 70℃;92%
With potassium carbonate In acetonitrile at 90℃; for 18h;
3-monochlorophenol
108-43-0

3-monochlorophenol

4-methoxymethoxy-2-naphthalencarboxylic acid

4-methoxymethoxy-2-naphthalencarboxylic acid

C19H15ClO4

C19H15ClO4

Conditions
ConditionsYield
With dmap; dicyclohexyl-carbodiimide In dichloromethane at 0 - 20℃; for 1.5h; Inert atmosphere;100%
3-monochlorophenol
108-43-0

3-monochlorophenol

N-(2,4-dimethoxybenzyl)-2,3-difluoro-5-nitrobenzenesulfonamide

N-(2,4-dimethoxybenzyl)-2,3-difluoro-5-nitrobenzenesulfonamide

2-(3-chlorophenoxy)-N-(2,4-dimethoxybenzyl)-3-fluoro-5-nitrobenzenesulfonamide

2-(3-chlorophenoxy)-N-(2,4-dimethoxybenzyl)-3-fluoro-5-nitrobenzenesulfonamide

Conditions
ConditionsYield
With caesium carbonate In acetonitrile at 0 - 20℃;100%
3-monochlorophenol
108-43-0

3-monochlorophenol

2-chloroethyl cyanomethyl ether
31250-08-5

2-chloroethyl cyanomethyl ether

2-[2-(3-chlorophenoxy)ethoxy]acetonitrile

2-[2-(3-chlorophenoxy)ethoxy]acetonitrile

Conditions
ConditionsYield
With potassium carbonate In N,N-dimethyl acetamide at 120℃; Inert atmosphere;100%
3-monochlorophenol
108-43-0

3-monochlorophenol

phenol
108-95-2

phenol

Conditions
ConditionsYield
With hydrogen; sodium hydroxide In water at 25℃; for 2h;99.9%
With hydrogen; sodium hydroxide In water at 20℃; under 760.051 Torr; for 1h;99.9%
With hydrogen; sodium hydroxide In water at 20℃; under 760.051 Torr; for 1.5h;99.8%
3-monochlorophenol
108-43-0

3-monochlorophenol

2,4,6-tribromo-3-chlorophenol
40979-03-1

2,4,6-tribromo-3-chlorophenol

Conditions
ConditionsYield
With benzyltrimethylammonium tribromide; calcium carbonate In methanol; dichloromethane99%
With water; potassium bromide
3-monochlorophenol
108-43-0

3-monochlorophenol

acetic anhydride
108-24-7

acetic anhydride

3-chlorophenyl acetate
13031-39-5

3-chlorophenyl acetate

Conditions
ConditionsYield
With Zn(N4,N4'-di(pyridin-4-yl)biphenyl-4,4'-dicarboxamide)(5-aminoisophthalate) In dichloromethane at 20℃; for 14h;99%
With sulfuric acid at 20℃; for 17h;99%
With C36H30N4O4*2C3H7NO*2NO3(1-)*Zn(2+)*2C2H3N In dichloromethane at 20℃; for 11h;97%
3-monochlorophenol
108-43-0

3-monochlorophenol

ethyl bromoacetate
105-36-2

ethyl bromoacetate

ethyl (3-chlorophenoxy)acetate
52094-98-1

ethyl (3-chlorophenoxy)acetate

Conditions
ConditionsYield
With potassium carbonate In acetone for 4h; Reflux;99%
With potassium carbonate In acetone for 20h; Reflux;98%
With hydrogenchloride; potassium carbonate In hexane; ethyl acetate; acetone58 g (87%)
3-monochlorophenol
108-43-0

3-monochlorophenol

3-(diphenylphosphinyl)-3-methyl-1,2-butadiene
15729-19-8

3-(diphenylphosphinyl)-3-methyl-1,2-butadiene

C22H20ClO2P
1176335-48-0

C22H20ClO2P

Conditions
ConditionsYield
With (R)-((4,4’-bi-1,3-benzodioxole)-5,5’-diyl)bis(bis(3,5-di-t-butyl-4-methoxyphenyl))phosphine; [Rh(OH)(cod)]2 In tert-butyl alcohol at 80℃; for 24h; Inert atmosphere; optical yield given as %ee; enantioselective reaction;99%
N-(2-nitro-5-chlorophenyl)-N-methylcarbamic acid t-butyl ester
299176-17-3

N-(2-nitro-5-chlorophenyl)-N-methylcarbamic acid t-butyl ester

3-monochlorophenol
108-43-0

3-monochlorophenol

tert-butyl [5-(3-chlorophenoxy)-2-nitrophenyl]methylcarbamate
1072002-99-3

tert-butyl [5-(3-chlorophenoxy)-2-nitrophenyl]methylcarbamate

Conditions
ConditionsYield
With sodium hydride In N,N-dimethyl acetamide at 80℃; Cooling with ice;99%
With sodium hydride In N,N-dimethyl-formamide at 80℃; for 10h; Inert atmosphere;99%
3-monochlorophenol
108-43-0

3-monochlorophenol

Phenyl glycidyl ether
122-60-1

Phenyl glycidyl ether

1-(3'-chlorophenoxy)-3-phenoxypropan-2-ol
1260374-17-1

1-(3'-chlorophenoxy)-3-phenoxypropan-2-ol

Conditions
ConditionsYield
With 2-tert-butylimino-2-diethylamino-1,3-dimethylperhydro-1,3,2-diazaphosphorine supported on polystyrene (PS-BEMP; PS = 200-400 mesh polystyryl with 2percent of divinylbenzene) at 60℃; for 40h; Neat (no solvent); regioselective reaction;99%
3-monochlorophenol
108-43-0

3-monochlorophenol

2-fluoro-4-methoxy-benzaldehyde
331-64-6

2-fluoro-4-methoxy-benzaldehyde

2-(3-chlorophenoxy)-4-methoxybenzaldehyde
1446253-88-8

2-(3-chlorophenoxy)-4-methoxybenzaldehyde

Conditions
ConditionsYield
With potassium carbonate In dimethyl sulfoxide at 120℃; for 3h; Inert atmosphere;99%
3-monochlorophenol
108-43-0

3-monochlorophenol

4-fluorobenzonitrile
1194-02-1

4-fluorobenzonitrile

4-(3-chlorophenoxy)benzoic acid
1145-58-0

4-(3-chlorophenoxy)benzoic acid

Conditions
ConditionsYield
Stage #1: 3-monochlorophenol; 4-fluorobenzonitrile With potassium hydroxide In N,N-dimethyl-formamide at 175℃; for 0.333333h; Sealed tube;
Stage #2: With potassium hydroxide In water for 12h; Reflux;
99%
Stage #1: 3-monochlorophenol; 4-fluorobenzonitrile With potassium hydroxide In N,N-dimethyl-formamide at 175℃; for 0.333333h; Sealed tube;
Stage #2: With water; potassium hydroxide for 12h; Reflux;
99%
3-monochlorophenol
108-43-0

3-monochlorophenol

3,5-dibromo-1-(2,2-difluoroethyl)-1H-1,2,4-triazole

3,5-dibromo-1-(2,2-difluoroethyl)-1H-1,2,4-triazole

3-bromo-5-(3-chlorophenoxy)-1-(2,2-difluoroethyl)-1H-1,2,4-triazole

3-bromo-5-(3-chlorophenoxy)-1-(2,2-difluoroethyl)-1H-1,2,4-triazole

Conditions
ConditionsYield
With potassium carbonate In N,N-dimethyl-formamide at 100℃; for 18h; Temperature;99%
3-monochlorophenol
108-43-0

3-monochlorophenol

3,5-dibromo-1-methyl-1H-1,2,4-triazole
23579-79-5

3,5-dibromo-1-methyl-1H-1,2,4-triazole

3-bromo-5-(3-chlorophenoxy)-1-methyl-1H-1,2,4-triazole

3-bromo-5-(3-chlorophenoxy)-1-methyl-1H-1,2,4-triazole

Conditions
ConditionsYield
With potassium carbonate In N,N-dimethyl-formamide at 100℃; for 15h; Sealed tube;99%

108-43-0Related news

A kinetic study of 3-Chlorophenol (cas 108-43-0) enhanced hydroxyl radical generation during ozonation08/28/2019

Hydroxyl (OH) radical is proposed as an important factor in the ozonation of water. In the present study, the enhancing effect of 3-chlorophenol on OH radical generation was mathematically evaluated using electron spin resonance (ESR)/spin-trapping technique. OH radical was trapped with a 5,5-di...detailed

Resonance enhanced multiphoton ionization and time-of-flight mass spectra of jet-cooled 3-Chlorophenol (cas 108-43-0) dimer08/27/2019

The resonance enhanced multiphoton ionization (REMPI) excitation spectrum of jet-cooled 3-chlorophenol (3-ClP) was measured in combination with time-of-flight (TOF) mass spectrometry. In the TOF mass spectrum, 3-ClP, 3-ClP dimer and 3-ClP-water cluster cations were observed. The REMPI excitation...detailed

Decomposition of 3-Chlorophenol (cas 108-43-0) on nitrogen modified TiO2 photocatalysts08/24/2019

Photocatalytic activity of nitrogen modified TiO2 calcined at temperatures of 100–350 °C toward 3-chlorophenol (3-CP) degradation was studied. In the experiments the fluorescent UV lamp and the incandescent lamp emitting mainly Vis light were applied. The degradation efficiency was evaluated o...detailed

Pd/Al bimetallic nanoparticles for complete hydrodechlorination of 3-Chlorophenol (cas 108-43-0) in aqueous solution08/23/2019

Nanoscale Al particles with average diameter of about 100 nm were employed to prepare Pd/Al nanoparticles (NPs) by chemical displacement deposition. It was proved that Pd2+ acidic deposition solution was superior to its alkaline deposition solution in terms of Pd loading rate on Al NPs. The Pd/A...detailed

Competitive adsorption of phenol and 3-Chlorophenol (cas 108-43-0) on purified MWCNTs08/22/2019

A commercial multiwall carbon nanotube and its carboxylated derivate (CNTC and COOHC, respectively) was used after purification to study the competitive adsorption of phenol (P) and m-chlorophenol (CP) from 0.1 M aqueous NaCl solutions without external pH control. The adsorption takes place prac...detailed

Full length articleFabrication of PbO2/SnO2 composite anode for electrochemical degradation of 3-Chlorophenol (cas 108-43-0) in aqueous solution08/19/2019

In present work, SnO2 nanoparticles were synthesized using simple hydrothermal process, and then a novel PbO2/SnO2 electrode was successfully fabricated using obtained SnO2 nanoparticles for electrochemical oxidation of 3-chlorophenol (3-CP). The microstructure, element distribution, crystal str...detailed

108-43-0Relevant articles and documents

Electrocatalytic reduction of ROOH by iron porphyrins

Collman, James P.,Kaplun, Marina,Sunderland, Christopher J.,Boulatov, Roman

, p. 11166 - 11167 (2004)

Electrocatalytic reduction of a series of chemical oxidants of different power (tert-butyl hydroperoxide, potassium peroxomonosulfate, peracetic acid, and m-chloroperbenzoic acid) at iron-porphyrin-modified graphite electrodes is studied in buffered aqueous solutions by rotating disk and ring-disk voltammetry. Both ferric and ferrous porphyrins are catalytically active. Turnover of ferric catalysts is slower than that of the ferrous analogues and involves competing catalytic reduction and disproportionation. The kinetic data are consistent with reactant binding being the rate-determining step in catalysis by Fe(III). In catalysis by Fe(II), the turnover is controlled by the first electron transfer. The covalently linked proximal imidazole ligand is found to be crucial for achieving the Fe(III) catalysis. Copyright

Benzene Hydroxylation by Bioinspired Copper(II) Complexes: Coordination Geometry versus Reactivity

Anandababu, Karunanithi,Mayilmurugan, Ramasamy,Muthuramalingam, Sethuraman,Velusamy, Marappan

, p. 5918 - 5928 (2020)

A series of bioinspired copper(II) complexes of N4-tripodal and sterically crowded diazepane-based ligands have been investigated as catalysts for functionalization of the aromatic C-H bond. The tripodal-ligand-based complexes exhibited distorted trigonal-bipyramidal (TBP) geometry (τ, 0.70) around the copper(II) center; however, diazepane-ligand-based complexes adopted square-pyramidal (SP) geometry (τ, 0.037). The Cu-NPy bonds (2.003-2.096 ?) are almost identical and shorter than Cu-Namine bonds (2.01-2.148 ?). Also, their Cu-O (Cu-Owater, 1.988 ? Cu-Otriflate, 2.33 ?) bond distances are slightly varied. All of the complexes exhibited Cu2+ → Cu+ redox couples in acetonitrile, where the redox potentials of TBP-based complexes (-0.251 to -0.383 V) are higher than those of SP-based complexes (-0.450 to -0.527 V). The d-d bands around 582-757 nm and axial patterns of electron paramagnetic resonance spectra [g∥, 2.200-2.251; A∥, (146-166) × 10-4 cm-1] of the complexes suggest the existence of five-coordination geometry. The bonding parameters showed K∥ > K∥ for all complexes, corresponding to out-of-plane πbonding. The complexes catalyzed direct hydroxylation of benzene using 30% H2O2 and afforded phenol exclusively. The complexes with TBP geometry exhibited the highest amount of phenol formation (37%) with selectivity (98%) superior to that of diazepane-based complexes (29%), which preferred to adopt SP-based geometry. Hydroxylation of benzene likely proceeded via a CuII-OOH key intermediate, and its formation has been established by electrospray ionization mass spectrometry, vibrational, and electronic spectra. Their formation constants have been calculated as (2.54-11.85) × 10-2 s-1 from the appearance of an O (π?σ) → Cu ligand-to-metal charge-transfer transition around 370-390 nm. The kinetic isotope effect (KIE) experiments showed values of 0.97-1.12 for all complexes, which further supports the crucial role of Cu-OOH in catalysis. The 18O-labeling studies using H218O2 showed a 92% incorporation of 18O into phenol, which confirms H2O2 as the key oxygen supplier. Overall, the coordination geometry of the complexes strongly influenced the catalytic efficiencies. The geometry of one of the CuII-OOH intermediates has been optimized by the density functional theory method, and its calculated electronic and vibrational spectra are almost similar to the experimentally observed values.

-

Uhlemann

, p. 116 (1878)

-

Non-Innocent Role of the Ceria Support in Pd-Catalyzed Halophenol Hydrodehalogenation

An, Yeongseo,Freppon, Daniel,Masching, Hayley,Naik, Pranjali J.,Sedinkin, Sergey L.,Slowing, Igor I.,Smith, Emily A.,Venditti, Vincenzo

, p. 10553 - 10564 (2021/09/04)

The hydrodehalogenation (HDH) of halophenols is efficiently catalyzed by palladium supported on high-surface ceria (Pd/CeO2) under mild conditions (35 °C, 1 atm H2). A combination of NMR, diffuse reflectance infrared Fourier transform spectroscopy, Raman spectroscopy, and XPS studies and HDH kinetics of substituted halobenzenes suggests that the reaction proceeds mainly via a sequence of dissociative adsorption of phenolic hydroxyl onto the support, oxidative addition of the C-halogen bond to Pd, and reductive elimination to give phenol and hydrogen halide. The dissociative adsorption of the -OH group onto oxygen vacancies of the ceria support results in an electron-rich intermediate that facilitates the turnover-limiting reductive elimination step. In contrast, the direct pathway catalyzed by Pd without dissociative adsorption of the reactants on the support takes place at a slower rate. The mechanistic insights gained in this study were used to modify the reaction conditions for enabling HDH of recalcitrant halides such as fluorides and iodides.

Catalyst-free rapid conversion of arylboronic acids to phenols under green condition

Dong, Zhenhua,Liu, Mengmeng,Pan, Hongguo

, (2021/09/06)

A catalyst-free and solvent-free method for the oxidative hydroxylation of aryl boronic acids to corresponding phenols with hydrogen peroxide as the oxidizing agent was developed. The reactions could be performed under green condition at room temperature within very short reaction time. 99% yield of phenol could be achieved in only 1 min. A series of different arenes substituted aryl boronic acids were further carried out in the hydroxylation reaction with excellent yield. It was worth nothing that the reaction could completed within 1 min in all cases in the presence of ethanol as co-solvent.

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

What can I do for you?
Get Best Price

Get Best Price for 108-43-0