Introduction of CAS:40100-11-6 | Bis (3,4-dibromobenzene) -18-crown-6
Synthesis and Metal Complexes: The compound has been utilized in the synthesis of macrocyclic polyethers, which have shown the ability to form crystalline complexes with alkali and alkaline earth metals, indicating its potential use in coordination chemistry.
Specification of CAS:40100-11-6 | Bis (3,4-dibromobenzene) -18-crown-6
|
ITEMS |
SPECIFICATION |
|
Molecular Formula |
C20H20Br4O6 |
|
Molecular Weight |
675.99 |
|
Boiling point |
642.4±55.0 °C(Predicted) |
|
Purity |
98% |
|
Density |
1.733±0.06 g/cm3(Predicted) |
Research Application of CAS:40100-11-6 | Bis (3,4-dibromobenzene) -18-crown-6
Derivative Synthesis: Derivatives of this macrocyclic polyether, including tetrazol-1-yl and 5-methyltetrazol-1-yl substituents, have been synthesized. These derivatives could have applications in various fields of chemical research (Ostrovskii et al., 2016).
Indium Complex Formation: The macrocycle forms adducts with indium compounds, which could be significant in materials science and inorganic chemistry (Taylor, Tuck, & Victoriano, 1981).
Electrochemical Studies: The compound has been studied in polarography, revealing insights into its complexation reactions and stability constants in various solvents. This can be important for understanding its behavior in non-aqueous solutions (Lada, Urbańczyk, & Kalinowski, 1990).
Crystallographic Analysis: Its complexation with various metals has been studied, and the molecular structures of these complexes have been determined using X-ray crystallography, which can be useful in the field of crystal engineering (Smith & Taylor, 2022).
Thermodynamic Stability: Research has been conducted on the thermal stability of this compound and its correlation with molecular and crystal structure, which is crucial for its application in materials science (Battaglia et al., 1987).


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