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Home  > 4-Chloro-2-fluoro-5-(trifluoromethyl)pyridine

AW09961

1227580-43-9 | 4-Chloro-2-fluoro-5-(trifluoromethyl)pyridine

Packsize Purity Availability Price Discounted Price    Quantity
50mg 95% 1 week $1,272.00 $891.00 -   +
100mg 95% 1 week $1,637.00 $1,146.00 -   +
250mg 95% 1 week $2,304.00 $1,613.00 -   +
500mg 95% 1 week $3,583.00 $2,508.00 -   +
1g 95% 1 week $4,569.00 $3,198.00 -   +

*All products are for research use only and not intended for human or animal use.

*All prices are in USD.

Description
Catalog Number: AW09961
Chemical Name: 4-Chloro-2-fluoro-5-(trifluoromethyl)pyridine
CAS Number: 1227580-43-9
Molecular Formula: C6H2ClF4N
Molecular Weight: 199.5334
MDL Number: MFCD16610408
SMILES: Fc1ncc(c(c1)Cl)C(F)(F)F

 

Upstream Synthesis Route
  • 4-Chloro-2-fluoro-5-(trifluoromethyl)pyridine is a versatile building block in chemical synthesis due to its unique properties and reactivity. This compound serves as a valuable intermediate in the development of agrochemicals and pharmaceuticals. In organic synthesis, it can be used for the construction of complex molecular structures through various transformations such as nucleophilic substitutions, palladium-catalyzed cross-coupling reactions, and aromatic substitutions.One key application of 4-Chloro-2-fluoro-5-(trifluoromethyl)pyridine is in the synthesis of novel heterocyclic compounds with potential biological activity. By incorporating this pyridine derivative into the molecular structure, chemists can modulate the physicochemical properties of the final products, leading to enhanced biological efficacy or improved pharmacokinetic profiles. Additionally, the trifluoromethyl group in the molecule can act as a metabolic stabilizer, making the resulting compounds less prone to degradation in biological systems.Furthermore, 4-Chloro-2-fluoro-5-(trifluoromethyl)pyridine can be employed in the development of materials science applications, such as the production of functionalized polymers, liquid crystals, and optoelectronic materials. Its unique fluorinated substituents offer tunable electronic properties that are crucial for the design of advanced materials with tailored properties for specific applications in electronics, photonics, or sensors.
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