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29898-25-7

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29898-25-7 Usage

Chemical Properties

A pale yellow to colorless liquid

Check Digit Verification of cas no

The CAS Registry Mumber 29898-25-7 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 2,9,8,9 and 8 respectively; the second part has 2 digits, 2 and 5 respectively.
Calculate Digit Verification of CAS Registry Number 29898-25:
(7*2)+(6*9)+(5*8)+(4*9)+(3*8)+(2*2)+(1*5)=177
177 % 10 = 7
So 29898-25-7 is a valid CAS Registry Number.
InChI:InChI=1/C12H16O/c1-2-6-12(13)10-9-11-7-4-3-5-8-11/h3-5,7-8H,2,6,9-10H2,1H3

29898-25-7SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 20, 2017

Revision Date: Aug 20, 2017

1.Identification

1.1 GHS Product identifier

Product name 1-phenylhexan-3-one

1.2 Other means of identification

Product number -
Other names 3-Oxo-1-phenyl-hexan

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:29898-25-7 SDS

29898-25-7Synthetic route

(E)-1-phenylhex-1-en-3-one
82297-62-9

(E)-1-phenylhex-1-en-3-one

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
Pd-C In ethyl acetate99.4%
hex-3-yne
928-49-4

hex-3-yne

N-(3-methyl-2-pyridyl)-N-[(E)-3-phenyl-2-propenyl]amine
256379-28-9

N-(3-methyl-2-pyridyl)-N-[(E)-3-phenyl-2-propenyl]amine

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
Stage #1: hex-3-yne; N-(3-methyl-2-pyridyl)-N-[(E)-3-phenyl-2-propenyl]amine With Wilkinson's catalyst; cyclohexylamine In toluene at 130℃; for 12h;
Stage #2: With water; hydrogen cation Further stages.;
93%
3-phenyl-propionaldehyde
104-53-0

3-phenyl-propionaldehyde

hex-3-yne
928-49-4

hex-3-yne

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With 3-methylpyridin-2-ylamine; Wilkinson's catalyst; cyclohexylamine; aluminium trichloride In toluene at 130℃; for 12h;91%
1-phenyl-3-hexanol
2180-43-0

1-phenyl-3-hexanol

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With tert.-butylnitrite; 2-azatricyclo[3.3.1.13,7]dec-2-yloxidanyl In acetonitrile at 20℃; for 6h; chemoselective reaction;90%
With dipyridinium dichromate In dichloromethane for 8h;65%
With chromium(VI) oxide; acetic acid
1-hexene-3-ol
4798-44-1

1-hexene-3-ol

sodium benzenesulfonate
873-55-2

sodium benzenesulfonate

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With 4,7-Dimethyl-1,10-phenanthroline; palladium(II) trifluoroacetate; copper (II) trifluoroacetate hydrate In 1,4-dioxane at 100℃; for 20h; Sealed tube; regioselective reaction;80%
iodobenzene
591-50-4

iodobenzene

1-hexene-3-ol
4798-44-1

1-hexene-3-ol

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With potassium carbonate; bis(η3-allyl-μ-chloropalladium(II)); Tedicyp In N,N-dimethyl-formamide at 130℃; for 20h; Heck reaction;78%
3-phenyl-propionaldehyde
104-53-0

3-phenyl-propionaldehyde

2-bromoprop-1-ene
557-93-7

2-bromoprop-1-ene

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With acetylacetonatodicarbonylrhodium(l); potassium formate; potassium carbonate; triphenylphosphine In 1,2-dimethoxyethane at 130℃; for 16h; Inert atmosphere; Sealed tube;78%
bromobenzene
108-86-1

bromobenzene

methyl 3-hydroxy-2-methylenehexanoate
18020-64-9

methyl 3-hydroxy-2-methylenehexanoate

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With tetrabutylammomium bromide; sodium formate; sodium hydrogencarbonate; Pd-benzothiazole carbene at 130℃; for 20h;77%
3-phenyl-propionaldehyde
104-53-0

3-phenyl-propionaldehyde

tert-butylethylene
558-37-2

tert-butylethylene

hex-3-yne
928-49-4

hex-3-yne

A

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

B

6,6-dimethylheptan-3-one
5054-71-7

6,6-dimethylheptan-3-one

C

6,6-dimethyl-1-phenyl-3-heptanone

6,6-dimethyl-1-phenyl-3-heptanone

Conditions
ConditionsYield
With 3-methylpyridin-2-ylamine; Wilkinson's catalyst; hexan-1-amine; 4-trifluoromethylbenzoic acid; water In toluene at 150℃; for 24h;A 75%
B 39%
C 6%
2-Pentanone
107-87-9

2-Pentanone

benzyl alcohol
100-51-6

benzyl alcohol

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With trifuran-2-yl-phosphane; C48H34F6N4O4Pd2; lithium hydroxide In neat (no solvent) at 80 - 100℃; for 24h; Inert atmosphere; Schlenk technique; Sealed tube;72%
nickel In tetrahydrofuran at 76℃; for 8h;36%
With nickel(0) nanoparticles In tetrahydrofuran at 76℃; for 8h; Inert atmosphere;36%
styrene
292638-84-7

styrene

butyraldehyde
123-72-8

butyraldehyde

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With tetrakis(tetrabutylammonium)decatungstate(VI); 4,4'-dimethoxyphenyl disulfide In acetonitrile at 20℃; for 18h; Sealed tube; Inert atmosphere; Irradiation;62%
1-iodo-propane
107-08-4

1-iodo-propane

dihydrocinnamonitrile
645-59-0

dihydrocinnamonitrile

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With nickel(II) iodide; samarium diiodide In tetrahydrofuran at 0℃; for 0.5h; Barbier reaction;60%
[3-cyclopropyl-3-(3-iodoallyloxy)-propyl]-benzene
944449-56-3

[3-cyclopropyl-3-(3-iodoallyloxy)-propyl]-benzene

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
Stage #1: [3-cyclopropyl-3-(3-iodoallyloxy)-propyl]-benzene With 2,2'-azobis(isobutyronitrile); tri-n-butyl-tin hydride In benzene for 36h; Heating;
Stage #2: With potassium fluoride In benzene for 24h; Further stages.;
33%
2-methyl-1-phenethylcyclopropan-1-ol

2-methyl-1-phenethylcyclopropan-1-ol

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With 2,2,6,6-Tetramethyl-1-piperidinyloxy free radical; 10-phenyl-9-(2,4,6-trimethylphenyl)acridinium tetrafluoroborate; diphenyldisulfane In 1,2-dichloro-ethane for 12h; Inert atmosphere; Irradiation;20%
1-phenylhex-1-en-3-one
82297-62-9, 90729-78-5, 4646-80-4

1-phenylhex-1-en-3-one

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With cyclohexene; monoaluminum phosphate; silica gel; palladium at 100℃; for 3h;19.6%
With ethanol; nickel Hydrogenation;
With hydrogen Product distribution / selectivity;
dipropylcadmium
5905-48-6

dipropylcadmium

hydrocinnamic acid chloride
645-45-4

hydrocinnamic acid chloride

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With benzene
butyric acid
107-92-6

butyric acid

3-Phenylpropionic acid
501-52-0

3-Phenylpropionic acid

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With thorium dioxide
With thorium dioxide at 460℃;
phenyl-1 hexanol-2
60012-62-6

phenyl-1 hexanol-2

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With chromic acid
(Z)-1-phenyl-3-(trimethylsiloxy)-3-hexene
72551-30-5

(Z)-1-phenyl-3-(trimethylsiloxy)-3-hexene

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With hydrogenchloride In methanol Yield given;
benzyl bromide
100-39-0

benzyl bromide

2-Pentanone
107-87-9

2-Pentanone

A

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

B

3-benzyl-2-pentanone
61780-85-6

3-benzyl-2-pentanone

Conditions
ConditionsYield
With lithium chloride; manganese(ll) chloride; lithium diisopropyl amide 1.) 0 deg C, 1 h; 2.) THF, rt, 1 h then -78 deg C, 1 h; 3.) THF/NMP, -78 deg C, 1 h; Yield given. Multistep reaction. Yields of byproduct given;
1-phenyl-2-(phenylsulfonyl)-hex-1-en-3-one
113549-28-3

1-phenyl-2-(phenylsulfonyl)-hex-1-en-3-one

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With aluminum amalgam
n-propyl-styryl ketone

n-propyl-styryl ketone

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
With sodium amalgam; ethanol; acetic acid
propyllithium
2417-93-8

propyllithium

hydrocinnamic acid chloride
645-45-4

hydrocinnamic acid chloride

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
Stage #1: propyllithium With copper(l) iodide In diethyl ether at -40℃;
Stage #2: hydrocinnamic acid chloride In diethyl ether at -78℃;
(3-cyclopropyl-3-prop-2-ynyloxypropyl)-benzene
944449-49-4

(3-cyclopropyl-3-prop-2-ynyloxypropyl)-benzene

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1.1: tributyltin hydride; AINB / benzene / 4 h / Heating
1.2: 0.24 g / I2 / CH2Cl2 / 12 h / 20 °C
2.1: AIBN; tributyltin hydride / benzene / 36 h / Heating
2.2: 33 percent / aq. KF / benzene / 24 h
View Scheme
1-cyclopropyl-3-phenyl-1-propanol
52121-67-2

1-cyclopropyl-3-phenyl-1-propanol

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
Multi-step reaction with 3 steps
1.1: cetyltrimethylammonium bromide; aq. NaOH / CH2Cl2 / 1.5 h / 20 °C
1.2: 23 percent / toluene; CH2Cl2 / 60 h / 20 °C
2.1: tributyltin hydride; AINB / benzene / 4 h / Heating
2.2: 0.24 g / I2 / CH2Cl2 / 12 h / 20 °C
3.1: AIBN; tributyltin hydride / benzene / 36 h / Heating
3.2: 33 percent / aq. KF / benzene / 24 h
View Scheme
3-Phenylpropionic acid
501-52-0

3-Phenylpropionic acid

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

Conditions
ConditionsYield
Multi-step reaction with 2 steps
1.1: SOCl2; DMF / ethyl acetate
2.1: CuI / diethyl ether / -40 °C
2.2: diethyl ether / -78 °C
View Scheme
1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

1-phenyl-3-hexanol
2180-43-0

1-phenyl-3-hexanol

Conditions
ConditionsYield
With dicarbonyl-(2,4-bis(trimethylsilyl)bicyclo[3.3.0]nona-1,4-dien-3-one)[acetonitrile]iron; isopropyl alcohol at 80℃; for 18h; Inert atmosphere;98%
With diethyl ether; sodium inactive propyl-β-phenethyl-carbinol;
chloro-trimethyl-silane
75-77-4

chloro-trimethyl-silane

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

bromoacetic acid methyl ester
96-32-2

bromoacetic acid methyl ester

3-trimethylsilyloxy-3-(2'-phenylethyl)caproic acid methyl ester
672284-81-0

3-trimethylsilyloxy-3-(2'-phenylethyl)caproic acid methyl ester

Conditions
ConditionsYield
Stage #1: chloro-trimethyl-silane With zinc In ethyl acetate at 20 - 50℃; for 0.25h;
Stage #2: 1-phenylhexan-3-one; bromoacetic acid methyl ester In ethyl acetate at 55 - 60℃; for 0.25h; Reformatsky Reaction;
Stage #3: chloro-trimethyl-silane With piperazine Product distribution / selectivity; more than 3 stages;
95%
Stage #1: chloro-trimethyl-silane With zinc In tetrahydrofuran at 20 - 50℃; for 0.25h;
Stage #2: 1-phenylhexan-3-one; bromoacetic acid methyl ester In tetrahydrofuran at 50℃; for 0.25h; Reformatsky Reaction;
Stage #3: chloro-trimethyl-silane With N,N,N,N,-tetramethylethylenediamine Product distribution / selectivity; more than 3 stages;
92%
Stage #1: chloro-trimethyl-silane With zinc In tetrahydrofuran at 20 - 50℃; for 0.25h;
Stage #2: 1-phenylhexan-3-one; bromoacetic acid methyl ester In tetrahydrofuran at 50℃; for 0.25h; Reformatsky Reaction;
Stage #3: chloro-trimethyl-silane With piperazine Product distribution / selectivity; more than 3 stages;
91%
1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

acetylenemagnesium bromide
4301-14-8

acetylenemagnesium bromide

3-phenethylhex-1-yn-3-ol

3-phenethylhex-1-yn-3-ol

Conditions
ConditionsYield
In tetrahydrofuran at 0℃; for 2h; Inert atmosphere;91%
1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

methanesulfonyl chloride
124-63-0

methanesulfonyl chloride

1-phenylhexan-3-yl methanesulfonate

1-phenylhexan-3-yl methanesulfonate

Conditions
ConditionsYield
Stage #1: 1-phenylhexan-3-one With sodium tetrahydroborate; ethanol at 20℃; for 3h; Inert atmosphere;
Stage #2: methanesulfonyl chloride With triethylamine In dichloromethane at 20℃; for 15h; Inert atmosphere;
77%
1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

diazomethyl-trimethyl-silane
18107-18-1

diazomethyl-trimethyl-silane

C17H26Si
1266614-65-6

C17H26Si

Conditions
ConditionsYield
Stage #1: diazomethyl-trimethyl-silane With n-butyllithium In tetrahydrofuran; diethyl ether; hexane at -78℃; for 0.5h; Inert atmosphere;
Stage #2: 1-phenylhexan-3-one In tetrahydrofuran; diethyl ether; hexane at -78 - 20℃; for 4h; Inert atmosphere; regioselective reaction;
76%
1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

acetone
67-64-1

acetone

C15H22O2
1189366-32-2

C15H22O2

Conditions
ConditionsYield
With lithium diisopropyl amide at -78℃; for 5h;70%
1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

ethyl acetoacetate
141-97-9

ethyl acetoacetate

5,6-dihydro-4-hydroxy-6-phenethyl-6-propyl-2H-pyran-2-one
162174-87-0

5,6-dihydro-4-hydroxy-6-phenethyl-6-propyl-2H-pyran-2-one

Conditions
ConditionsYield
Multistep reaction;48%
malonic acid
141-82-2

malonic acid

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

2-phenethyl-2-propyl-[1,3]dioxane-4,6-dione
328237-98-5

2-phenethyl-2-propyl-[1,3]dioxane-4,6-dione

Conditions
ConditionsYield
With sulfuric acid; acetic anhydride32%
1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

hexylbenzene
1077-16-3

hexylbenzene

Conditions
ConditionsYield
With hydrogenchloride; amalgamated zinc
1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

1-phenyl-hexan-3-one semicarbazone
16769-44-1

1-phenyl-hexan-3-one semicarbazone

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

1-phenyl-hexan-3-one oxime

1-phenyl-hexan-3-one oxime

1-phenylhexan-3-one
29898-25-7

1-phenylhexan-3-one

ethyl 2-cyanoacetate
105-56-6

ethyl 2-cyanoacetate

2-cyano-3-phenethyl-hex-2-enoic acid ethyl ester
101582-27-8

2-cyano-3-phenethyl-hex-2-enoic acid ethyl ester

29898-25-7Relevant academic research and scientific papers

Rh-Catalyzed Coupling of Aldehydes with Allylboronates Enables Facile Access to Ketones

Zhang, Kezhuo,Huang, Jiaxin,Zhao, Wanxiang

supporting information, (2022/02/21)

We present herein a novel strategy for the preparation of ketones from aldehydes and allylic boronic esters. This reaction involves the allylation of aldehydes with allylic boronic esters and the Rh-catalyzed chain-walking of homoallylic alcohols. The key to this successful development is the protodeboronation of alkenyl borylether intermediate via a tetravalent borate anion species in the presence of KHF2 and MeOH. This approach features mild reaction conditions, broad substrate scope, and excellent functional group tolerance. Mechanistic studies also supported that the tandem allylation and chain-walking process were involved.

Light-Driven Carbene Catalysis for the Synthesis of Aliphatic and α-Amino Ketones

Bay, Anna V.,Cheong, Paul Ha-Yeon,Farah, Abdikani Omar,Fitzpatrick, Keegan P.,González-Montiel, Gisela A.,Scheidt, Karl A.

, p. 17925 - 17931 (2021/07/17)

Single-electron N-heterocyclic carbene (NHC) catalysis has gained attention recently for the synthesis of C?C bonds. Guided by density functional theory and mechanistic analyses, we report the light-driven synthesis of aliphatic and α-amino ketones using single-electron NHC operators. Computational and experimental results reveal that the reactivity of the key radical intermediate is substrate-dependent and can be modulated through steric and electronic parameters of the NHC. Catalyst potential is harnessed in the visible-light driven generation of an acyl azolium radical species that undergoes selective coupling with various radical partners to afford diverse ketone products. This methodology is showcased in the direct late-stage functionalization of amino acids and pharmaceutical compounds, highlighting the utility of single-electron NHC operators.

Visible-Light Decatungstate/Disulfide Dual Catalysis for the Hydro-Functionalization of Styrenes

Prieto, Alexis,Taillefer, Marc

supporting information, p. 1484 - 1488 (2021/03/08)

We describe an efficient photoredox system, relying on decatungstate/disulfide catalysts, for the hydrofunctionalization of styrenes. In this methodology the use of disulfide as a cocatalyst was shown to be crucial for the reaction efficiency. This photoredox system was employed for the hydro-carbamoylation, -acylation, -alkylation, and -silylation of styrenes, giving access to a large variety of useful building blocks and high-value molecules such as amides and unsymmetrical ketones from simple starting materials.

Visible-Light-Promoted Catalytic Ring-Opening Isomerization of 1,2-Disubstituted Cyclopropanols to Linear Ketones

Laktsevich-Iskryk, Marharyta V.,Varabyeva, Nastassia A.,Kazlova, Volha V.,Zhabinskii, Vladimir N.,Khripach, Vladimir A.,Hurski, Alaksiej L.

, p. 2431 - 2434 (2020/04/20)

Isomerization to linear ketones is a valuable transformation of 1,2-disubstituted cyclopropanols proceeding through radical intermediates. Despite simplicity of this reaction, the known protocol required stoichiometric amounts of both an oxidant and a reducing agent. In this article, we report a catalytic isomerization of 1,2-disubstituted cyclopropanols to linear ketones enabled by the photoredox catalytic system consisting of an acridinium photocatalyst and diphenyl disulfide under irradiation with blue LEDs.

Conversion of Aldehydes to Branched or Linear Ketones via Regiodivergent Rhodium-Catalyzed Vinyl Bromide Reductive Coupling-Redox Isomerization Mediated by Formate

Swyka, Robert A.,Shuler, William G.,Spinello, Brian J.,Zhang, Wandi,Lan, Chunling,Krische, Michael J.

supporting information, p. 6864 - 6868 (2019/05/10)

A regiodivergent catalytic method for direct conversion of aldehydes to branched or linear alkyl ketones is described. Rhodium complexes modified by PtBu2Me catalyze formate-mediated aldehyde-vinyl bromide reductive coupling-redox isomerization to form branched ketones. Use of the less strongly coordinating ligand, PPh3, promotes vinyl-to allylrhodium isomerization en route to linear ketones. This method bypasses the 3-step sequence often used to convert aldehydes to ketones involving the addition of pre-metalated reagents to Weinreb or morpholine amides.

Isolation and Characterization of Regioisomers of Pyrazole-Based Palladacycles and Their Use in α-Alkylation of Ketones Using Alcohols

Mamidala, Ramesh,Samser, Shaikh,Sharma, Nishant,Lourderaj, Upakarasamy,Venkatasubbaiah, Krishnan

supporting information, p. 3343 - 3351 (2017/09/18)

Regioisomers of 3,5-diphenyl-1-(4-(trifluoromethyl)phenyl)-1H-pyrazole-based palladacycles (1 and 2) were synthesized by the aromatic C-H bond activation of N/3-aryl ring. The application of these regioisomers as catalysts to enable the formation of α-alkylated ketones or quinolines with alcohols using a hydrogen borrowing process is evaluated. Experimental results reveal that palladacycle 2 is superior over palladacycle 1 to catalyze the reaction under similar reaction conditions. The reaction mechanisms for the palladacycles 1 and 2 catalyzed α-alkylation of acetophenone were studied using density functional theoretical (DFT) methods. The DFT studies indicate that palladacycle 2 has an energy barrier lower than that of palladacycle 1 for the alkylation reaction, consistent with the better catalytic activity of palladacycle 2 seen in the experiments. The palladacycle-phosphine system was found to tolerate a wide range of functional groups and serves as an efficient protocol for the synthesis of α-alkylated products under solvent-free conditions. In addition, the synthetic protocol was successfully applied to prepare donepezil, a drug for Alzheimer's disease, from simple starting materials.

Selective Aerobic Oxidation of Primary Alcohols to Aldehydes

Shibuya, Masatoshi,Furukawa, Keisuke,Yamamoto, Yoshihiko

, p. 1554 - 1557 (2017/08/11)

The 2-azaadamantane- N -oxyl (AZADO)- and 9-azanoradamantane- N -oxyl (nor-AZADO)-catalyzed selective oxidation of primary alcohols to the corresponding aldehydes is described. The use of tert -butyl nitrite as the co-catalyst enables efficient aerobic oxidation in MeCN instead of previously reported AcOH; this is important for the selectivity of the reaction. The addition of a solution of saturated aqueous NaHCO 3 after the completion of the reaction was effective to suppress the overoxidation of the product to the corresponding carboxylic acid during the workup.

Palladium-Catalyzed Desulfitative Oxidative Coupling between Arenesulfinic Acid Salts and Allylic Alcohols: A Strategy for the Selective Construction of β-Aryl Ketones and Aldehydes

Liao, Jianhua,Zhang, Zhenming,Tang, Xiaodong,Wu, Wanqing,Guo, Wei,Jiang, Huanfeng

, p. 8903 - 8909 (2015/09/15)

An efficient palladium-catalyzed desulfitative oxidative coupling of sodium arylsulfinites for highly region-selective Heck-type reaction of allylic alcohols has been developed. The compatibility of the functionalities of -I, -Br, and -F would explore further postfunctionalization of the C-X bonds. This method provides a new and straightforward protocol for the synthesis of β-aryl ketones and aldehydes. The deuterium labeling experiments indicated that this transformation may proceed via a [1, 2-H] shift process.

Gold- and silver-catalyzed reactions of propargylic alcohols in the presence of protic additives

Pennell, Matthew N.,Turner, Peter G.,Sheppard, Tom D.

scheme or table, p. 4748 - 4758 (2012/05/04)

A wide range of primary, secondary and tertiary propargylic alcohols undergo a Meyer-Schuster rearrangement to give enones at room temperature in the presence of a gold(I) catalyst and small quantities of MeOH or 4-methoxyphenylboronic acid. The syntheses of the enone natural products isoegomaketone and daphenone were achieved using this reaction as the key step. The rearrangement of primary propargylic alcohols can readily be combined in a one-pot procedure with the addition of a nucleophile to the resulting terminal enone, to give β-aryl, β-alkoxy, β-amino or β-sulfido ketones. Propargylic alcohols bearing an adjacent electron-rich aryl group can also undergo silver-catalyzed substitution of the alcohol with oxygen, nitrogen and carbon nucleophiles. This latter reaction was initially observed with a batch of gold catalyst that was probably contaminated with small quantities of silver salt.

A general procedure for the synthesis of enones via gold-catalyzed Meyer-Schuster rearrangement of propargylic alcohols at room temperature

Pennell, Matthew N.,Unthank, Matthew G.,Turner, Peter,Sheppard, Tom D.

supporting information; experimental part, p. 1479 - 1482 (2011/04/26)

Meyer-Schuster rearrangements of propargylic alcohols take place readily at room temperature in toluene with 1-2 mol % PPh3AuNTf2, in the presence of 0.2 equiv of 4-methoxyphenylboronic acid or 1 equiv of methanol. Good to excellent yields of enones can be obtained from secondary and tertiary alcohols, with high selectivity for the E-alkene in most cases. A one-pot procedure for the conversion of primary propargylic alcohols into β-arylketones was also developed, via Meyer-Schuster rearrangement followed by Pd-catalayzed addition of a boronic acid.(Figure Presented)

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