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N-tert-butoxycarbonyl-4-(4-toluenesulfonyloxymethyl)piperidine

N-tert-butoxycarbonyl-4-(4-toluenesulfonyloxymethyl)piperidine

  • Catalogue Number : SC119771
  • CAS Number : 166815-96-9
  • Molecular Formula : C18H27NO5S
  • Molecular Weight : 369.48
  • Purity : NLT 98%
Description

Catsyn offer gram to tons of N-tert-butoxycarbonyl-4-(4-toluenesulfonyloxymethyl)piperidine | CAS 166815-96-9, its formula is C18H27NO5S, molecular weight is 369.48g/mol and the purity is usually NLT 98%.

The molecular structure of this substance (CAS No.: 166815-96-9) typically contains specific functional groups and conjugated systems. Its physicochemical properties include well-defined solubility and melting/boiling point ranges in specific solvents. Intramolecular electronic effects influence charge distribution through induction or conjugation, thereby modulating its energy level structure, particularly the energy difference between the highest occupied molecular orbital (HOMO) and the lowest unoccupied molecular orbital (LUMO), which is crucial for light absorption and emission characteristics. Its conjugated system enhances molecular stability through π-electron delocalization and may also endow it with unique catalytic activity, especially as an electron transfer medium in redox reactions. Regarding coordination properties, if lone pairs of electrons or empty orbitals exist in the molecule, it can form stable complexes with metal ions, further expanding its application range. In the OLED field, this substance's core applications as a functional material are concentrated in the light-emitting layer or electron transport layer. Its high fluorescence quantum efficiency and tunable energy level structure make it a key component of high-efficiency electroluminescent devices. In catalysis, its unique electronic structure can accelerate the rate of specific chemical reactions, lower activation energy, and improve reaction selectivity. Furthermore, in coordination chemistry, this substance acts as a ligand, synergistically with metal centers to construct metal-organic frameworks (MOFs) or catalytically active centers with specific functions, driving the development of energy conversion and storage technologies. Its industry value lies in optimizing performance through molecular design to meet the urgent demand for high-performance functional materials in fields such as high-end displays, green catalysis, and new material development.

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