Welcome to LookChem.com Sign In|Join Free

CAS

  • or

95-64-7

Post Buying Request

95-64-7 Suppliers

Recommended suppliersmore

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

95-64-7 Usage

Description

3,4-Dimethylaniline, also known as 3,4-DMA, is a primary arylamine that is aniline in which the hydrogens at the 3and 4-positions are replaced by methyl groups. It is a low-melting, crystalline solid that appears as pale brown crystals or off-white solid. It is used in the production of vitamin B2, dyes, pesticides, and other chemicals.

Uses

Used in Chemical Research:
3,4-Dimethylaniline is used to study electron donor-acceptor interactions with 2,3-dicyano-1,4-naphthoquinone (DCNQ) in chloroform and dichloromethane. This helps in understanding the properties and behavior of these compounds in various chemical reactions.
Used in Organic Synthesis:
3,4-Dimethylaniline serves as a fine chemical and organic intermediate, which means it is used as a precursor or building block in the synthesis of more complex organic compounds. This makes it valuable in the production of various chemicals and materials.
Used in Pharmaceutical Industry:
3,4-Dimethylaniline is used in the production of certain pharmaceuticals, particularly in the synthesis of active pharmaceutical ingredients (APIs) for various medications.
Used in Dye Production:
3,4-Dimethylaniline is also used in the production of dyes, which are essential in various industries such as textiles, plastics, and printing inks.
Used in Pesticide Production:
3,4-Dimethylaniline is utilized in the synthesis of certain pesticides, which are crucial for protecting crops and ensuring food security.
Used in Vitamin B2 Production:
It plays a role in the production of vitamin B2, also known as riboflavin, which is an essential nutrient for human health and is used in various food products and supplements.
Chemical Properties:
3,4-Dimethylaniline is a slightly beige to beige or pink crystalline mass, which indicates its solid state and coloration.

Synthesis Reference(s)

Journal of the American Chemical Society, 63, p. 2532, 1941 DOI: 10.1021/ja01854a509Organic Syntheses, Coll. Vol. 3, p. 307, 1955

Air & Water Reactions

3,4-Dimethylaniline may be sensitive to prolonged exposure to air. Insoluble in water.

Reactivity Profile

3,4-Dimethylaniline ignites on contact with fuming nitric acid . Neutralizes acids in exothermic reactions to form salts plus water. May be incompatible with isocyanates, halogenated organics, peroxides, phenols (acidic), epoxides, anhydrides, and acid halides. Flammable gaseous hydrogen may be generated in combination with strong reducing agents, such as hydrides.

Fire Hazard

3,4-Dimethylaniline is combustible.

Safety Profile

Suspected carcinogen. Poison by ingestion. Mutation data reported. When heated to decomposition it emits toxic fumes of NOx. See also other xylidine entries.

Purification Methods

Crystallise it from ligroin and distil it under vacuum. [Beilstein 12 H 1103, 12 IV 2502.]

Check Digit Verification of cas no

The CAS Registry Mumber 95-64-7 includes 5 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 2 digits, 9 and 5 respectively; the second part has 2 digits, 6 and 4 respectively.
Calculate Digit Verification of CAS Registry Number 95-64:
(4*9)+(3*5)+(2*6)+(1*4)=67
67 % 10 = 7
So 95-64-7 is a valid CAS Registry Number.

95-64-7 Well-known Company Product Price

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

  • (A16928)  3,4-Dimethylaniline, 98%   

  • 95-64-7

  • 100g

  • 171.0CNY

  • Detail
  • Alfa Aesar

  • (A16928)  3,4-Dimethylaniline, 98%   

  • 95-64-7

  • 250g

  • 317.0CNY

  • Detail
  • Alfa Aesar

  • (A16928)  3,4-Dimethylaniline, 98%   

  • 95-64-7

  • 1000g

  • 1180.0CNY

  • Detail

95-64-7SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 12, 2017

Revision Date: Aug 12, 2017

1.Identification

1.1 GHS Product identifier

Product name 3,4-dimethylaniline

1.2 Other means of identification

Product number -
Other names 3,4-XYLIDINE

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:95-64-7 SDS

95-64-7Relevant articles and documents

Subnanometer Bimetallic Platinum–Zinc Clusters in Zeolites for Propane Dehydrogenation

Cheng, Jun,Fan, Qiyuan,Jia, Ran,Jiang, Zheng,Li, Lin,Mayoral, Alvaro,Miao, Shu,Sun, Qiming,Terasaki, Osamu,Wang, Ning,Wang, Ye,Xu, Jun,Yang, Dong-Chun,Yang, Ruoou,Yu, Jihong,Zeng, Lei,Zhang, Jichao,Zhang, Peng,Zhang, Qinghong,Zhang, Tianjun,Zhou, Wei

, p. 19450 - 19459 (2020)

Propane dehydrogenation (PDH) has great potential to meet the increasing global demand for propylene, but the widely used Pt-based catalysts usually suffer from short-term stability and unsatisfactory propylene selectivity. Herein, we develop a ligand-protected direct hydrogen reduction method for encapsulating subnanometer bimetallic Pt–Zn clusters inside silicalite-1 (S-1) zeolite. The introduction of Zn species significantly improved the stability of the Pt clusters and gave a superhigh propylene selectivity of 99.3 % with a weight hourly space velocity (WHSV) of 3.6–54 h?1 and specific activity of propylene formation of 65.5 mol (Formula presented.) gPt?1 h?1 (WHSV=108 h?1) at 550 °C. Moreover, no obvious deactivation was observed over PtZn4?S-1-H catalyst even after 13000 min on stream (WHSV=3.6 h?1), affording an extremely low deactivation constant of 0.001 h?1, which is 200 times lower than that of the PtZn4/Al2O3 counterpart under the same conditions. We also show that the introduction of Cs+ ions into the zeolite can improve the regeneration stability of catalysts, and the catalytic activity kept unchanged after four continuous cycles.

Impregnating Subnanometer Metallic Nanocatalysts into Self-Pillared Zeolite Nanosheets

Wang, Ning,Sun, Qiming,Zhang, Tianjun,Mayoral, Alvaro,Li, Lin,Zhou, Xue,Xu, Jun,Zhang, Peng,Yu, Jihong

, p. 6905 - 6914 (2021)

Impregnation is the most commonly used approach to prepare supported metal catalysts in industry. However, this method suffers from the formation of large metal particles with uneven dispersion, poor thermal stability, and thus unsatisfied catalytic performance. Here, we demonstrate that the self-pillared MFI zeolite (silicalite-1 and ZSM-5) nanosheets with larger surface area and abundant Si-OH groups are ideal supports to immobilize ultrasmall monometallic (e.g., Rh and Ru) and various bimetallic clusters via simple incipient wetness impregnation method. The loaded subnanometric metal clusters are uniformly dispersed within sinusoidal five-membered rings of MFI and remain stable at high temperatures. The Rh/SP-S-1 is highly efficient in ammonia borane (AB) hydrolysis, showing a TOF value of 430 molH2 molRh-1 min-1 at 298 K, which is more than 6-fold improvement over that of nanosized zeolite-supported Rh catalyst and even comparable with that of zeolite-supported Rh single-atom catalyst. Because of the synergistic effect between bimetallic Rh-Ru clusters and zeolite acidity, the H2 generation rate from AB hydrolysis over Rh0.8Ru0.2/SP-ZSM-5-100 reaches up to 1006 molH2 molmetal-1 min-1 at 298 K, and also shows record activities in cascade hydrogenation of various nitroarenes by coupling with the hydrolysis of AB. This work demonstrates that zeolite nanosheets are excellent supports to anchor diverse ultrasmall metallic species via the simple impregnation method, and the obtained nanocatalysts can be applied in various industrially important catalytic reactions.

C-H Amination of Arenes with Hydroxylamine

See, Yi Yang,Sanford, Melanie S.

supporting information, p. 2931 - 2934 (2020/04/09)

This Letter describes the development of a TiIII-mediated reaction for the C-H amination of arenes with hydroxylamine. This reaction is applied to a variety of electron-rich (hetero)arene substrates, including a series of natural products and pharmaceuticals. It offers the advantages of mild conditions (room temperature), fast reaction rates (30 min), compatibility with ambient moisture and air, scalability, and the use of inexpensive commercial reagents.

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 95-64-7