1,3,5-Trimethyl-2,4,6-Tris(4-pyridyl)benzene
98%
- Product Code: 38884
CAS:
2027486-17-3
Molecular Weight: | 351.44364 g./mol | Molecular Formula: | C₂₄H₂₁N₃ |
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EC Number: | MDL Number: | ||
Melting Point: | Boiling Point: | ||
Density: | Storage Condition: | Room temperature, dry, sealed |
Product Description:
This compound is primarily utilized in the field of supramolecular chemistry and materials science due to its unique structural properties. It serves as a building block for constructing metal-organic frameworks (MOFs), which are porous materials with applications in gas storage, separation, and catalysis. Its rigid, planar structure and multiple pyridyl groups enable it to form stable coordination networks with metal ions, making it valuable for designing functional materials. Additionally, it is explored in the development of luminescent materials and sensors, leveraging its ability to interact with various analytes or emit light under specific conditions. Its role in creating advanced molecular architectures also extends to research in nanotechnology and molecular electronics.
Product Specification:
Test | Specification |
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APPEARANCE | Solid |
PURITY | 97.5-100 |
Infrared spectrum | Conforms to Structure |
NMR | Conforms to Structure |
Sizes / Availability / Pricing:
Size (g) | Availability | Price | Quantity |
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0.100 | 10-20 days | €140.35 |
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0.250 | 10-20 days | €210.53 |
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1.000 | 10-20 days | €583.31 |
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1,3,5-Trimethyl-2,4,6-Tris(4-pyridyl)benzene
This compound is primarily utilized in the field of supramolecular chemistry and materials science due to its unique structural properties. It serves as a building block for constructing metal-organic frameworks (MOFs), which are porous materials with applications in gas storage, separation, and catalysis. Its rigid, planar structure and multiple pyridyl groups enable it to form stable coordination networks with metal ions, making it valuable for designing functional materials. Additionally, it is explored in the development of luminescent materials and sensors, leveraging its ability to interact with various analytes or emit light under specific conditions. Its role in creating advanced molecular architectures also extends to research in nanotechnology and molecular electronics.
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