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70095-40-8

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70095-40-8 Usage

General Description

(R)-2-Aminohexane, also known as (R)-2-Amino-1-hexane, is a chemical compound with the molecular formula C6H15N. It is a chiral amine, meaning it has a non-superimposable mirror image, and is therefore used in the production of chiral drugs and pharmaceuticals. (R)-2-Aminohexane is also used as a building block in the synthesis of various other organic compounds, such as surfactants, lubricants, and corrosion inhibitors. It is a clear, colorless liquid with a faint amine odor, and it is soluble in water and common organic solvents. (R)-2-Aminohexane has potential applications in the pharmaceutical, chemical, and industrial sectors.

Check Digit Verification of cas no

The CAS Registry Mumber 70095-40-8 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 7,0,0,9 and 5 respectively; the second part has 2 digits, 4 and 0 respectively.
Calculate Digit Verification of CAS Registry Number 70095-40:
(7*7)+(6*0)+(5*0)+(4*9)+(3*5)+(2*4)+(1*0)=108
108 % 10 = 8
So 70095-40-8 is a valid CAS Registry Number.
InChI:InChI=1/C6H15N/c1-3-4-5-6(2)7/h6H,3-5,7H2,1-2H3/t6-/m1/s1

70095-40-8 Well-known Company Product Price

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  • Alfa Aesar

  • (L19304)  (R)-(-)-2-Aminohexane, ChiPros 99+%, ee 96+%   

  • 70095-40-8

  • 1g

  • 529.0CNY

  • Detail
  • Alfa Aesar

  • (L19304)  (R)-(-)-2-Aminohexane, ChiPros 99+%, ee 96+%   

  • 70095-40-8

  • 5g

  • 1761.0CNY

  • Detail
  • Alfa Aesar

  • (L19304)  (R)-(-)-2-Aminohexane, ChiPros 99+%, ee 96+%   

  • 70095-40-8

  • 25g

  • 7043.0CNY

  • Detail
  • Aldrich

  • (727164)  (R)-2-Aminohexane  ChiPros®, produced by BASF, ≥99%

  • 70095-40-8

  • 727164-5G

  • 1,978.47CNY

  • Detail
  • Aldrich

  • (727164)  (R)-2-Aminohexane  ChiPros®, produced by BASF, ≥99%

  • 70095-40-8

  • 727164-25G

  • 6,372.99CNY

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70095-40-8SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 15, 2017

Revision Date: Aug 15, 2017

1.Identification

1.1 GHS Product identifier

Product name (2R)-hexan-2-amine

1.2 Other means of identification

Product number -
Other names (R)-2-Hexylamine

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:70095-40-8 SDS

70095-40-8Relevant articles and documents

Generation of Oxidoreductases with Dual Alcohol Dehydrogenase and Amine Dehydrogenase Activity

Tseliou, Vasilis,Schilder, Don,Masman, Marcelo F.,Knaus, Tanja,Mutti, Francesco G.

supporting information, p. 3315 - 3325 (2020/12/11)

The l-lysine-?-dehydrogenase (LysEDH) from Geobacillus stearothermophilus naturally catalyzes the oxidative deamination of the ?-amino group of l-lysine. We previously engineered this enzyme to create amine dehydrogenase (AmDH) variants that possess a new hydrophobic cavity in their active site such that aromatic ketones can bind and be converted into α-chiral amines with excellent enantioselectivity. We also recently observed that LysEDH was capable of reducing aromatic aldehydes into primary alcohols. Herein, we harnessed the promiscuous alcohol dehydrogenase (ADH) activity of LysEDH to create new variants that exhibited enhanced catalytic activity for the reduction of substituted benzaldehydes and arylaliphatic aldehydes to primary alcohols. Notably, these novel engineered dehydrogenases also catalyzed the reductive amination of a variety of aldehydes and ketones with excellent enantioselectivity, thus exhibiting a dual AmDH/ADH activity. We envisioned that the catalytic bi-functionality of these enzymes could be applied for the direct conversion of alcohols into amines. As a proof-of-principle, we performed an unprecedented one-pot “hydrogen-borrowing” cascade to convert benzyl alcohol to benzylamine using a single enzyme. Conducting the same biocatalytic cascade in the presence of cofactor recycling enzymes (i.e., NADH-oxidase and formate dehydrogenase) increased the reaction yields. In summary, this work provides the first examples of enzymes showing “alcohol aminase” activity.

Ruthenium Catalyzed Direct Asymmetric Reductive Amination of Simple Aliphatic Ketones Using Ammonium Iodide and Hydrogen

Ernst, Martin,Ghosh, Tamal,Hashmi, A. Stephen K.,Schaub, Thomas

supporting information, (2020/07/14)

The direct conversion of ketones into chiral primary amines is a key transformation in chemistry. Here, we present a ruthenium catalyzed asymmetric reductive amination (ARA) of purely aliphatic ketones with good yields and moderate enantioselectivity: up to 99 percent yield and 74 percent ee. The strategy involves [Ru(PPh3)3H(CO)Cl] in combination with the ligand (S,S)-f-binaphane as the catalyst, NH4I as the amine source and H2 as the reductant. This is a straightforward and user-friendly process to access industrially relevant chiral aliphatic primary amines. Although the enantioselectivity with this approach is only moderate, to the extent of our knowledge, the maximum ee of 74 percent achieved with this system is the highest reported till now apart from enzyme catalysis for the direct transformation of ketones into chiral aliphatic primary amines.

Separate Sets of Mutations Enhance Activity and Substrate Scope of Amine Dehydrogenase

Franklin, Robert D.,Mount, Conner J.,Bommarius, Bettina R.,Bommarius, Andreas S.

, p. 2436 - 2439 (2020/04/16)

Mutations were introduced into the leucine amine dehydrogenase (L-AmDH) derived from G. stearothermophilus leucine dehydrogenase (LeuDH) with the goals of increased activity and expanded substrate acceptance. A triple variant (L-AmDH-TV) including D32A, F101S, and C290V showed an average of 2.5-fold higher activity toward aliphatic ketones and an 8.0 °C increase in melting temperature. L-AmDH-TV did not show significant changes in relative activity for different substrates. In contrast, L39A, L39G, A112G, and T133G in varied combinations added to L-AmDH-TV changed the shape of the substrate binding pocket. L-AmDH-TV was not active on ketones larger than 2-hexanone. L39A and L39G enabled activity for straight-chain ketones as large as 2-decanone and in combination with A112G enabled activity toward longer branched ketones including 5-methyl-2-octanone.

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