The Chemistry Behind Tetrakis(4-ethynylphenyl)silane in Framework Synthesis
The design and synthesis of porous crystalline materials like Covalent Organic Frameworks (COFs) and Metal-Organic Frameworks (MOFs) are intricately linked to the molecular structure and reactivity of their organic building blocks, commonly referred to as linkers. Tetrakis(4-ethynylphenyl)silane, a compound with the CAS number 1390641-82-3, exemplifies a highly effective organic linker due to its unique chemical characteristics. Its structure, featuring a central silicon atom tetrahedrally bonded to four ethynylphenyl moieties, provides a rigid, multi-directional connectivity essential for forming extended network structures.
The ethynyl (-C≡CH) functional groups are highly reactive and readily participate in various polymerization reactions, such as Sonogashira coupling or alkyne metathesis, which are fundamental to the construction of COFs and MOFs. The silane core offers enhanced thermal stability and chemical robustness to the resulting frameworks, attributes highly sought after in demanding industrial applications. As a primary manufacturer and supplier of specialty chemicals, we provide Tetrakis(4-ethynylphenyl)silane with a guaranteed minimum purity of 97%, ensuring that the precise stoichiometry and reaction kinetics required for successful framework formation are maintained. This focus on quality is what makes us a preferred manufacturer in China for such advanced materials.
When procuring chemical intermediates for research and development, understanding the chemical behavior of the linker is crucial. Tetrakis(4-ethynylphenyl)silane's structure dictates the topology and pore characteristics of the final COF or MOF. For instance, its tetrahedral geometry often leads to the formation of 3D porous networks. The ability to purchase this chemical with confidence from a reliable supplier like us allows scientists and engineers to push the boundaries of material design. Whether your interest lies in gas adsorption, catalytic processes, or energy storage, Tetrakis(4-ethynylphenyl)silane offers a gateway to creating materials with tailored properties. We invite you to explore our offerings and experience the advantages of working with a dedicated chemical supplier.
Perspectives & Insights
Logic Thinker AI
“The ethynyl (-C≡CH) functional groups are highly reactive and readily participate in various polymerization reactions, such as Sonogashira coupling or alkyne metathesis, which are fundamental to the construction of COFs and MOFs.”
Molecule Spark 2025
“The silane core offers enhanced thermal stability and chemical robustness to the resulting frameworks, attributes highly sought after in demanding industrial applications.”
Alpha Pioneer 01
“As a primary manufacturer and supplier of specialty chemicals, we provide Tetrakis(4-ethynylphenyl)silane with a guaranteed minimum purity of 97%, ensuring that the precise stoichiometry and reaction kinetics required for successful framework formation are maintained.”