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Olanzapine

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Identification
Molecular formula
C17H20N4S
CAS number
132539-06-1
IUPAC name
2-methyl-4-(4-methylpiperazin-1-yl)-5H-thieno[3,2-c][1,5]benzodiazepine
State
State

At room temperature, olanzapine is in a solid state, appearing as a yellow crystalline powder.

Melting point (Celsius)
195.00
Melting point (Kelvin)
468.15
Boiling point (Celsius)
544.00
Boiling point (Kelvin)
817.15
General information
Molecular weight
312.44g/mol
Molar mass
312.4440g/mol
Density
1.3406g/cm3
Appearence

Olanzapine is a yellow crystalline solid powder.

Comment on solubility

Solubility of 2-methyl-4-(4-methylpiperazin-1-yl)-5H-thieno[3,2-c][1,5]benzodiazepine (C17H20N4S)

The solubility of 2-methyl-4-(4-methylpiperazin-1-yl)-5H-thieno[3,2-c][1,5]benzodiazepine is an important aspect to consider, especially in the field of pharmaceuticals and chemical research. This compound is known for its potential biological activity, and its solubility can significantly influence its efficacy and bioavailability.

  • Solvent Interaction: The presence of various functional groups in the compound suggests it may display differing solubilities in polar and non-polar solvents.
  • Polarity: Being a thieno[3,2-c][1,5]benzodiazepine, the structure could lead to moderate polarity, which might enhance its solubility in polar solvents like water and alcohols.
  • Environmental Factors: Temperature and pH can also impact solubility, making it crucial to consider these factors in experimental setups.
  • Practical Applications: The solubility characteristics can affect storage, formulation, and the route of administration in medicinal applications.

As a general rule, compounds with similar structures tend to exhibit similar solubility behaviors. Therefore, understanding the solubility of this compound can be guided by examining related molecules, leading to predictive insights.

In conclusion, thorough solubility testing and characterization are essential to maximize the utility of 2-methyl-4-(4-methylpiperazin-1-yl)-5H-thieno[3,2-c][1,5]benzodiazepine in various applications. Always aim to gather empirical data to establish comprehensive solubility parameters for practical use.

Interesting facts

Interesting Facts about 2-methyl-4-(4-methylpiperazin-1-yl)-5H-thieno[3,2-c][1,5]benzodiazepine

The compound 2-methyl-4-(4-methylpiperazin-1-yl)-5H-thieno[3,2-c][1,5]benzodiazepine represents a fascinating example of modern pharmaceutical chemistry. This compound belongs to the benzodiazepine class, which is renowned for its calming effects and ability to modulate the central nervous system. Here are some key points about this intriguing compound:

  • Structure and Functionality: The unique thieno[3,2-c][1,5]benzodiazepine core offers a diverse range of potential interactions with biological systems, enhancing its pharmacological profile.
  • Piperazine Moiety: The inclusion of a piperazine ring is significant as it can contribute to the compound's affinity for certain receptors in the brain, potentially influencing its anxiolytic and antidepressant properties.
  • Therapeutic Potential: The structural characteristics suggest that this compound could exhibit therapeutic effects in the treatment of anxiety disorders, depression, and other related conditions.
  • Research Significance: Compounds like this one are frequently studied in drug discovery programs, particularly for their ability to cross the blood-brain barrier, making them ideal candidates for central nervous system active drugs.

In the words of Antoine Lavoisier, one of the founders of modern chemistry, "Nothing is lost, nothing is created, everything is transformed." This principle reminds chemists of the importance of modifying existing compounds to create new and effective treatments. The journey of exploring compounds like 2-methyl-4-(4-methylpiperazin-1-yl)-5H-thieno[3,2-c][1,5]benzodiazepine reflects this transformative spirit in chemistry.

As studies continue, researchers are eager to unveil more about the properties and functionalities of this compound, potentially leading to novel applications in therapeutic medicine. The dynamic interplay between structure and biological activity within this class of compounds offers an exciting frontier for study and discovery.