(4-Dodecyl-2-thienyl)trimethylstannane is an organotin compound widely used in material science research, particularly in the development of semiconductor materials. This compound serves as a key building block in the synthesis of complex molecules with applications in optoelectronic technologies and semiconductor devices. In the laboratory, it plays a crucial role in the creation of materials with tailored electronic properties, enabling the design of advanced functional materials for modern technological applications. Its unique molecular structure supports a wide range of chemical reactivity, making it an essential component in various synthetic processes.
The compound's high reactivity and structural versatility make it a preferred choice for researchers working on semiconductor and optoelectronic material synthesis. Its molecular framework combines a long hydrocarbon chain with a thienyl group, enhancing its compatibility with a variety of chemical reactions. This allows it to act as a versatile intermediate in the development of new materials with specific optical and electronic characteristics. The compound's stability and reactivity balance make it ideal for use in controlled laboratory environments where precise chemical reactions are required.
In Indonesian laboratories, (4-Dodecyl-2-thienyl)trimethylstannane is commonly used in material science and semiconductor technology research. Researchers from academic institutions and research centers utilize this compound for experiments involving the synthesis of novel materials. Its role in creating materials with specific electronic and optical properties makes it a valuable tool in the advancement of semiconductor and optoelectronic technologies in Indonesia.
- Semiconductor material synthesis: This compound is ideal for creating advanced semiconductor materials due to its reactivity and structural versatility, enabling the development of materials with tailored electronic properties.
- Optoelectronic device fabrication: Its unique molecular structure allows it to be used in the production of optoelectronic components, enhancing the performance of light-sensitive and conductive materials.
- Organic semiconductor research: The compound's ability to form stable chemical bonds makes it suitable for studying organic semiconductors, supporting research into new material applications.
- Molecular building block experimentation: It serves as a fundamental component in the synthesis of complex molecules, allowing researchers to explore new chemical pathways and material properties.
- Material characterization studies: Its well-defined structure enables precise analysis in material characterization, aiding in the understanding of electronic and optical behavior in new materials.
| Brand | TCI |
|---|---|
| CAS number | 211181-63-4 |
| Molecular formula | — |
| Purity | — |
| Category | Materials Science > Material Building Blocks > Small Molecule Semiconductor Building Blocks |
| Pack sizes | Available in various quantities as per standard laboratory supply |
| Physical form | Solid or liquid, depending on specific formulation |
| Storage | Store in a cool, dry place away from moisture and direct sunlight |
This compound should be stored in a cool, dry environment to maintain its chemical stability. It is recommended to use airtight containers to prevent exposure to moisture and air, which could affect its reactivity. Due to its organotin nature, it should be handled with care to avoid direct contact with skin or inhalation. Laboratory personnel should wear appropriate personal protective equipment, including gloves and safety goggles, when working with this material. It is also advisable to keep it away from incompatible substances to ensure safe storage and usage in the laboratory.
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