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FEMA 2687, also known as α-Methylbenzyl isobutyrate, is a chemical compound with a jasmine-like, floral odor. It is prepared by esterification of methylphenylcarbinol with isobutyric acid and is characterized by its sweet, floral, rosy taste with a ripe, fruity fleshy finish and a lingering aftertaste.

7775-39-5

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7775-39-5 Usage

Uses

Used in Flavor Industry:
FEMA 2687 is used as a flavoring agent for its sweet, floral, and rosy taste characteristics. It is commonly found in various food and beverage products, including apple, beer, cocoa, grape, grape brandy, passion fruit, rum, sake, strawberry, whiskey, and wine.
Used in Fragrance Industry:
FEMA 2687 is used as a fragrance ingredient for its jasmine-like, floral odor. It is often used in the formulation of perfumes, colognes, and other scented products due to its heavy oily, green floral rosy aroma with a powdery note and tropical mango-like nuances.
Used in Cosmetic Industry:
FEMA 2687 is used as an additive in the cosmetic industry to provide a pleasant and long-lasting scent to various cosmetic products, such as lotions, creams, and shampoos. Its sweet, floral, and rosy taste characteristics make it a popular choice for enhancing the sensory experience of these products.

Preparation

By esterification (under azeotropic conditions) of methylphenylcarbinol with isobutryic acid.

Check Digit Verification of cas no

The CAS Registry Mumber 7775-39-5 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 7,7,7 and 5 respectively; the second part has 2 digits, 3 and 9 respectively.
Calculate Digit Verification of CAS Registry Number 7775-39:
(6*7)+(5*7)+(4*7)+(3*5)+(2*3)+(1*9)=135
135 % 10 = 5
So 7775-39-5 is a valid CAS Registry Number.
InChI:InChI=1/C12H16O2/c1-9(2)12(13)14-10(3)11-7-5-4-6-8-11/h4-10H,1-3H3

7775-39-5SDS

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 isobutyric acid 1-phenyl-ethyl ester

1.2 Other means of identification

Product number -
Other names PHENYLETHYL ISOBUTYRATE

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only. Food additives -> Flavoring Agents
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:7775-39-5 SDS

7775-39-5Synthetic route

1-Phenylethanol
98-85-1, 13323-81-4

1-Phenylethanol

2-Methylpropionic anhydride
97-72-3

2-Methylpropionic anhydride

isobutyric acid 1-phenyl-ethyl ester
7775-39-5

isobutyric acid 1-phenyl-ethyl ester

Conditions
ConditionsYield
With bifunctional polymer In toluene at 20℃; for 1h;100%
With 4-N,N-dimethylaminopyridinium saccharinate at 25℃; for 2h; Inert atmosphere; Neat (no solvent);99%
4-N,N-dimethylaminopyridinium saccharinate at 25℃; for 2h; Product distribution / selectivity;99.5%
1-Phenylethanol
98-85-1, 13323-81-4

1-Phenylethanol

isopropenyl isobutyrate
69638-94-4

isopropenyl isobutyrate

isobutyric acid 1-phenyl-ethyl ester
7775-39-5

isobutyric acid 1-phenyl-ethyl ester

Conditions
ConditionsYield
With Zeolite NaA; neodymium (III) isopropoxide In n-heptane at 50℃; for 0.25h;89%
1-Phenylethanol
98-85-1, 13323-81-4

1-Phenylethanol

isobutyric Acid
79-31-2

isobutyric Acid

A

bis(1-phenylethyl)ether
93-96-9

bis(1-phenylethyl)ether

B

isobutyric acid 1-phenyl-ethyl ester
7775-39-5

isobutyric acid 1-phenyl-ethyl ester

Conditions
ConditionsYield
With iodine at 25℃; for 144h;
Isovaleric anhydride
1468-39-9

Isovaleric anhydride

1-Phenylethanol
98-85-1, 13323-81-4

1-Phenylethanol

isobutyric acid 1-phenyl-ethyl ester
7775-39-5

isobutyric acid 1-phenyl-ethyl ester

Conditions
ConditionsYield
With 4-mesityl-6-methyl-3,4-dihydro-2H-benzo[4,5]thiazolo[3,2-a]pyrimidine; N-ethyl-N,N-diisopropylamine In dichloromethane at 20 - 25℃;
isobutyric acid 1-phenyl-ethyl ester
7775-39-5

isobutyric acid 1-phenyl-ethyl ester

1-Phenylethanol
98-85-1, 13323-81-4

1-Phenylethanol

Conditions
ConditionsYield
Stage #1: isobutyric acid 1-phenyl-ethyl ester With water; potassium hydroxide
Stage #2: With hydrogenchloride In water
isobutyric acid 1-phenyl-ethyl ester
7775-39-5

isobutyric acid 1-phenyl-ethyl ester

A

(S)-1-phenylethanol
1445-91-6

(S)-1-phenylethanol

B

(R)-1-phenylethanol
1517-69-7

(R)-1-phenylethanol

Conditions
ConditionsYield
With sodium hydroxide In methanol for 0.333333h;
With water; sodium hydroxide In methanol for 6h;
isobutyric acid 1-phenyl-ethyl ester
7775-39-5

isobutyric acid 1-phenyl-ethyl ester

A

(R)-1-phenylethanol
1517-69-7

(R)-1-phenylethanol

B

(1R)-1-phenylethyl 2-methylpropanoate
138457-64-4

(1R)-1-phenylethyl 2-methylpropanoate

C

(S)-1-phenylethyl 2-methylpropanoate
76149-13-8

(S)-1-phenylethyl 2-methylpropanoate

Conditions
ConditionsYield
With sodium carbonate In toluene at 40℃; for 72h; Solvent; Reagent/catalyst; Temperature; Enzymatic reaction; enantioselective reaction;A n/a
B n/a
C n/a

7775-39-5Relevant academic research and scientific papers

Insight into the Mechanism of the Acylation of Alcohols with Acid Anhydrides Catalyzed by Phosphoric Acid Derivatives

Hayashi, Hiroyuki,Yasukochi, Shotaro,Sakamoto, Tatsuhiro,Hatano, Manabu,Ishihara, Kazuaki

, p. 5197 - 5212 (2021/04/12)

Insight into the mechanism of a safe, simple, and inexpensive phosphoric acid (H3PO4)-catalyzed acylation of alcohols with acid anhydrides is described. The corresponding in situ-generated diacylated mixed anhydrides, unlike traditionally proposed monoacylated mixed anhydrides, are proposed as the active species. In particular, the diacylated mixed anhydrides act as efficient catalytic acyl transfer reagents rather than as Br?nsted acid catalysts simply activating acid anhydrides. Remarkably, highly efficient phosphoric acid (1-3 mol %)-catalyzed acylation of alcohols with acid anhydrides was achieved and a 23 g scale synthesis of an ester was demonstrated. Also, phosphoric acid catalyst was effective for synthetically useful esterification from carboxylic acids, alcohols, and acid anhydride. Moreover, with regard to recent developments in chiral 1,1′-bi-2-naphthol (BINOL)-derived phosphoric acid diester catalysts toward asymmetric kinetic resolution of alcohols by acylation, some phosphate diesters were examined. As a result, a 31P NMR study and a kinetics study strongly supported not only the acid-base cooperative mechanism as previously proposed by other researchers but also the mixed anhydride mechanism as presently proposed by us.

The Size-Accelerated Kinetic Resolution of Secondary Alcohols

P?lloth, Benjamin,Sibi, Mukund P.,Zipse, Hendrik

supporting information, p. 774 - 778 (2020/12/01)

The factors responsible for the kinetic resolution of alcohols by chiral pyridine derivatives have been elucidated by measurements of relative rates for a set of substrates with systematically growing aromatic side chains using accurate competitive linear regression analysis. Increasing the side chain size from phenyl to pyrenyl results in a rate acceleration of more than 40 for the major enantiomer. Based on this observation a new catalyst with increased steric bulk has been designed that gives enantioselectivity values of up to s=250. Extensive conformational analysis of the relevant transition states indicates that alcohol attack to the more crowded side of the acyl-catalyst intermediate is favoured due to stabilizing CH-π-stacking interactions. Experimental and theoretical results imply that enantioselectivity enhancements result from accelerating the transformation of the major enantiomer through attractive non-covalent interactions (NCIs) rather than retarding the transformation of the minor isomer through repulsive steric forces.

Two Approaches for CAL-B-Catalyzed Enantioselective Deacylation of a Set of α-Phenyl Ethyl Esters: Organic Solvent with Sodium Carbonate and Micro-aqueous Medium

Razi, Samra,Zeror, Saoussen,Merabet-Khelassi, Mounia,Kolodziej, Emilie,Toffano, Martial,Aribi-Zouioueche, Louisa

, p. 2603 - 2611 (2021/01/15)

Herein, we report an efficient enantioselective cleavage of the acyl- moiety of a set of α- phenyl ethyl esters with different chain-lengths catalyzed by lipase B from Candida antarctica (CAL-B) by comparing two reactional approaches: anhydrous media with sodium carbonates and micro-aqueous medium. The deacylation is performed in organic solvent, in the presence of Na2CO3 in the first case, and by addition of a drop of phosphate buffer solution pH 7 in the second. The results show the high efficiency of the deacylation in the presence of the sodium carbonate for the enzymatic resolution of all the esters and that in term of reactivity (31% ≤ conv ≤ 50%) and selectivity (E > 200). While, during the hydrolysis in micro-aqueous media, the conversion is strongly affected by the length of the acyl-chain side, the conversion decreases from conv = 50% with the 1-phenylethyl acetate 1a to conv = 19% with 1-phenyethyl dodecanoate 6a, and this, even if the selectivity remains high (E > 89). In both conditions, the lipase CAL-B shows a high enantioselectivities in favor of (R)-1-phenyl ethanol enantiomer (conv > 45%, E > 200) but the reactivity is modulated by the form and the size of the acyl-chain side. Graphic Abstract: [Figure not available: see fulltext.].

Chromatography-Free Esterification Reactions Using a Bifunctional Polymer

Ma, Shuang,Toy, Patrick H.

supporting information, p. 1207 - 1210 (2016/05/10)

A linear polystyrene functionalized with both nucleophilic DMAP groups and sterically hindered tertiary amine groups was synthesized and used homogeneously in a range of esterification reactions between alcohols and various carboxylic acid derivatives. The polymer was highly effective in such reactions where the DMAP groups served as catalytic groups. The ester products of these reactions could be isolated in high purity and yield without the need for chromatographic purification, and the polymer could be recovered and reused numerous times with no apparent decrease in utility.

Pyridinium saccharinate salts as efficient recyclable acylation catalyst: A new bridge between heterogeneous and homogeneous catalysis

Lu, Norman,Chang, Wei-Hsuan,Wei, Rong-Jyun,Fang, Yung-Cheng,Han, Tu-Wen,Wang, Guo-Quan,Chang, Jia-Yaw,Wen, Yuh-Sheng,Liu, Ling-Kang

, p. 3468 - 3476 (2016/06/06)

It is important to find a way for separation of concerned chemicals from product mixture after reaction, in order to avoid spreading harmful chemicals to society. The homogeneous nature of DMAP-catalyzed acylation still suffers from the problems of catalyst separation and/or residual DMAP contamination. DMAP causes acute dermal toxicity, whereas the corresponding DMAP salt exhibits only slight irritation to the skin. Very recently, we found that the DMAP saccharinate salt is also great recyclable catalyst, whose acylation of alcohols has been successfully and effectively carried out 10 times without loss in activity. This report covers our comprehensive studies on using the pyridinium saccharinate salts as efficient recyclable acylation catalysts including 4-N,N-dimethylaminopyridinium saccharinate (A), 4-(1-pyrrolidinyl) pyridinium saccharinate (B), 2-N,N-dimethylaminopyridinium saccharinate (C), and pyridinium saccharinate (D). Their structure and reactivity have been studied. The salts A, C, and D contain very interesting seven-membered synthon showing multiple H-bonding interactions for pair of pyridinium cation and saccharinate anion in the solid state. The salt B exhibits H-bonding interaction of N(sac) ... H-N(py) in the solid state, instead of seven-membered synthon. The catalytic reactivity studies show that salts A and B are both very effective, with salt B even better in reactivity, and are both recyclable in the esterification of a variety of alcohols, under solvent-free and base-free conditions at room temperature.

DMAP-based flexible polymer networks formed via Heck coupling as efficient heterogeneous organocatalysts

Xu, Wei,Xia, Wu,Guan, Yukun,Wang, Yiming,Lu, Cuifen,Yang, Guichun,Nie, Junqi,Chen, Zuxing

, p. 15 - 21 (2016/06/14)

Two DMAP-based flexible polymer networks TPB-DMAP and TPA-DMAP have been successfully synthesized via palladium catalyzed Heck cross-coupling. The structures of these polymers were confirmed by solid state 13C CP/MAS and Fourier transform infrared spectroscopy (FTIR). Although both polymers have negligible surface areas, they exhibit excellent catalytic efficiency for the acylation of 1-phenylethanol with acetic anhydride due to their good swelling capacities. Utilized as a typical catalyst, the polymer TPA-DMAP shows high activities for acylation of a variety of alcohols to the corresponding esters. Moreover, the catalyst can be recycled at least ten times without obvious loss of catalytic activity.

Structure-activity relationship of dihydroimidazo-, dihydropyrimido, tetrahydrodiazepino-[2,1-b]-thiazoles, and -benzothiazoles as an acylation catalyst

Okamoto, Sentaro,Sakai, Yuzo,Watanabe, Saki,Nishi, Shohei,Yoneyama, Aya,Katsumata, Hitomi,Kosaki, Yu,Sato, Rumi,Shiratori, Megumi,Shibuno, Misuzu,Shishido, Tsukasa

, p. 1909 - 1912 (2014/03/21)

Cyclic isothioureas 1, 2, 3, and 4 were synthesized through a four-step procedure from the corresponding ortho-bromoanilines 10 via Pd- or Cu-catalyzed cyclization-benzothiazole formation. Nonbenzo analogues 7, 8, and 9 were synthesized by a condensation reaction of cyclic thioureas 15 and α-bromoacetophenones 14. Investigations of the acylation reactions of 1-phenylethanol with acid anhydrides in the presence of these cyclic isothiourea catalysts revealed their structure-activity relationships. Remarkable electronic effects resulting from substituent(s) on a benzo or phenyl moiety and the influence of the size of the annulating ring were observed. Introduction of an electron-donating substituent(s) enhanced the reaction rate. A few substitution effects on chiral catalysts of type 3 and 7 were also studied.

RECYCLABLE CATALYSTS FOR ESTERIFICATION OR ACYLATION OF ALCOHOLS

-

Page/Page column 3, (2012/07/28)

A compound is useful as a recyclable catalyst for esterification or acylation of alcohols and consists of saccharine and a compound comprising a pyridine moiety. In addition, also a method of preparing the compound and an ester synthesis method using the compound are introduced.

A salt made of 4-N,N-dimethylaminopyridine (DMAP) and saccharin as an efficient recyclable acylation catalyst: A new bridge between heterogeneous and homogeneous catalysis

Lu, Norman,Chang, Wei-Hsuan,Tu, Wen-Han,Li, Chieh-Keng

supporting information; experimental part, p. 7227 - 7229 (2011/09/12)

Here, we report insights into the new recyclable catalyst 1, (DMAP·saccharin). The DMAP·saccharin-catalysed acylation of alcohols has been successfully carried out more than 8 times. Only 1 mol% of catalyst 1 efficiently promotes acylation with almost equimolar amounts of acid anhydrides, under both base-free and solvent-free conditions.

Synthesis and catalytic properties of 4-aryl-2,3-dihydro-4 H -pyrimido[2,3- b ]benzothiazoles for asymmetric acyl or carboxyl group transfer reactions

Viswambharan, Baby,Okimura, Tatsuya,Suzuki, Satoko,Okamoto, Sentaro

experimental part, p. 6678 - 6685 (2011/10/09)

4-Aryl-2,3-dihydro-4H-pyrimido[2,3-b]benzothiazoles (4-Ar-DHPBs) were synthesized and their catalytic activity and selectivity in kinetic resolution of a secondary alcohol as well as in the Steglich rearrangement and related reactions were evaluated. 4-Aryl-DHPBs showed low enantioselectivity in the acylative kinetic resolution of 1-phenylethanol. Conversely, they catalyzed the Steglich rearrangement with moderate to excellent enantioselectivity, demonstrating the possibility for remote stereocontrol by introduction of a substituent at the 4-position of DHPB.

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