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3637-63-6

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3637-63-6 Usage

Description

Cyclooctanemethanol, also known as 1-methoxycyclooctane, is an organic compound with the molecular formula C9H18O. It is a colorless liquid with a mild odor and is soluble in water. Cyclooctanemethanol is characterized by its cyclooctane ring structure with a methanol group attached to it. This unique structure endows it with specific properties that make it suitable for various applications.

Uses

Used in Chemical Industry:
Cyclooctanemethanol is used as a high boiling solvent and heat transfer agent due to its high boiling point and thermal stability. Its ability to dissolve a wide range of substances makes it an ideal solvent for various chemical reactions and processes.
Used in Plastic and Lacquer Industry:
Cyclooctanemethanol is useful for conversion into plastic and lacquer base materials. Its compatibility with other polymers and resins allows it to be used as a component in the production of various types of plastics and coatings.
Used in Nylon Production:
Cyclooctanemethanol can be oxidized to cyclooctane carboxylic acid, which can be further converted into octahydro-2-oxo-1H-azonine (S-aminooctanoic acid lactam). CYCLOOCTANEMETHANOL serves as a starting material for the production of nylon-8, a type of synthetic polymer with potential applications in various industries, including textiles, automotive, and electronics.

Check Digit Verification of cas no

The CAS Registry Mumber 3637-63-6 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 3,6,3 and 7 respectively; the second part has 2 digits, 6 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 3637-63:
(6*3)+(5*6)+(4*3)+(3*7)+(2*6)+(1*3)=96
96 % 10 = 6
So 3637-63-6 is a valid CAS Registry Number.
InChI:InChI=1/C9H18O/c10-8-9-6-4-2-1-3-5-7-9/h9-10H,1-8H2

3637-63-6SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 15, 2017

Revision Date: Aug 15, 2017

1.Identification

1.1 GHS Product identifier

Product name CYCLOOCTANEMETHANOL

1.2 Other means of identification

Product number -
Other names cyclooctylmethanol

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:3637-63-6 SDS

3637-63-6Relevant articles and documents

Iridium-Catalyzed Domino Hydroformylation/Hydrogenation of Olefins to Alcohols: Synergy of Two Ligands

Beller, Matthias,Huang, Weiheng,Jackstell, Ralf,Jiao, Haijun,Tian, Xinxin

supporting information, (2022/01/13)

A novel one-pot iridium-catalyzed domino hydroxymethylation of olefins, which relies on using two different ligands at the same time, is reported. DFT computation reveals different activities for the individual hydroformylation and hydrogenation steps in the presence of mono- and bidentate ligands. Whereas bidentate ligands have higher hydrogenation activity, monodentate ligands show higher hydroformylation activity. Accordingly, a catalyst system is introduced that uses dual ligands in the whole domino process. Control experiments show that the overall selectivity is kinetically controlled. Both computation and experiment explain the function of the two optimized ligands during the domino process.

Vicinal, Double C-H Functionalization of Alcohols via an Imidate Radical-Polar Crossover Cascade

Nagib, David A.,Prusinowski, Allen F.,Twumasi, Raymond K.,Wappes, Ethan A.

supporting information, (2020/03/16)

A double functionalization of vicinal sp3 C-H bonds has been developed, wherein a β amine and γiodide are incorporated onto an aliphatic alcohol in a single operation. This approach is enabled by an imidate radical chaperone, which selectively affords a transient β alkene that is amino-iodinated in situ. Overall, the radical-polar-crossover cascade entails the following key steps: (i) β C-H iodination via 1,5-hydrogen atom transfer (HAT), (ii) desaturation via I2 complexation, and (iii) vicinal amino-iodination of an in situ generated allyl imidate. The synthetic utility of this double C-H functionalization is illustrated by conversion of aliphatic alcohols to a diverse collection of α,β,γsubstituted products bearing heteroatoms on three adjacent carbons. The radical-polar crossover mechanism is supported by various experimental probes, including isotopic labeling, intermediate validation, and kinetic studies.

Dehydroxymethylation of Alcohols Enabled by Cerium Photocatalysis

Zhang, Kaining,Chang, Liang,An, Qing,Wang, Xin,Zuo, Zhiwei

supporting information, p. 10556 - 10564 (2019/08/28)

Dehydroxymethylation, the direct conversion of alcohol feedstocks as alkyl synthons containing one less carbon atom, is an unconventional and underexplored strategy to exploit the ubiquity and robustness of alcohol materials. Under mild and redox-neutral reaction conditions, utilizing inexpensive cerium catalyst, the photocatalytic dehydroxymethylation platform has been furnished. Enabled by ligand-to-metal charge transfer catalysis, an alcohol functionality has been reliably transferred into nucleophilic radicals with the loss of one molecule of formaldehyde. Intriguingly, we found that the dehydroxymethylation process can be significantly promoted by the cerium catalyst, and the stabilization effect of the fragmented radicals also plays a significant role. This operationally simple protocol has enabled the direct utilization of primary alcohols as unconventional alkyl nucleophiles for radical-mediated 1,4-conjugate additions with Michael acceptors. A broad range of alcohols, from simple ethanol to complex nucleosides and steroids, have been successfully applied to this fragment coupling transformation. Furthermore, the modularity of this catalytic system has been demonstrated in diversified radical-mediated transformations including hydrogenation, amination, alkenylation, and oxidation.

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