Introduction of CAS:33228-45-4 | 4-HEXYLANILINE
The synthesis of aniline derivatives is a well-studied area. For instance, palladium-catalyzed oxidative carbonylation has been used to synthesize 4H-3,1-benzoxazines and quinoline-4-one derivatives from 2-ethynylaniline amide or urea derivatives. Similarly, palladium-catalyzed intermolecular aerobic oxidative cyclization of 2-ethynylanilines with isocyanides has been employed to synthesize 4-halo-2-aminoquinolines. These methods highlight the versatility of palladium-catalyzed reactions in constructing complex molecules from simple aniline precursors, which could potentially be applied to the synthesis of 4-Hexylaniline.
Specification of CAS:33228-45-4 | 4-HEXYLANILINE
|
ITEMS |
SPECIFICATION |
|
Refractive index |
n20/D 1.525(lit.) |
|
Boiling point |
279-285 °C(lit.) |
|
Density |
0.919 g/mL at 25 °C(lit.) |
|
Color |
Colorless to light yellow to light orange |
|
Form |
transparency liquid |
|
Storage condition |
under inert gas (nitrogen or Argon) at 2–8 °C |
Research Application of CAS:33228-45-4 | 4-HEXYLANILINE
Application in Liquid Crystal Molecule Study
In a comprehensive study, the vibrational analysis of N-(4-n-pentyl-oxybenzylidene)-4'-n-hexylaniline liquid crystal molecule was conducted. The study provided insights into various characteristics such as chemical reactivity, charge distribution, electrical properties, and hyperpolarizability of the molecule. This research is essential for understanding the physical and chemical properties of liquid crystal molecules, which have wide-ranging applications in displays and other optical devices (Gupta & Bhattacharjee, 2019).
Studies in Polymer Synthesis
4-Hexylaniline has been explored in the context of polymer synthesis. For instance, the synthesis and characterization of poly(o-hexylaniline), a soluble conducting polymer, was studied. Due to its higher solubility and better processability, this polymer presents new potential in the field of organic electronics. Understanding the properties and behaviors of such polymers can lead to the development of innovative materials for electronic and optoelectronic applications (Geniés & Noël, 1991).
Self-Assembly Behavior in Nanotechnology
Hexylaniline derivatives have been studied for their self-assembly behavior, a crucial aspect in nanotechnology. Scanning tunneling microscopy revealed how these derivatives form ordered networks at interfaces, a phenomenon important for developing nanoscale devices and materials. Such studies contribute to the understanding of molecular interactions at the nanoscale, which is fundamental in the design and fabrication of nanomaterials and nanodevices (Wu et al., 2016).



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