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Specifications
| Appearance | White or light yellow crystal |
| Purity (GC) | 98% min |
| Melting point | 129-133°C |
| Water content | 0.5% max |
Applications
Ethoxyamine hydrochloride is a versatile organic compound widely used as an intermediate in chemical synthesis, pharmaceuticals, and analytical chemistry. In medicinal chemistry, it serves as a building block for the preparation of various heterocyclic compounds, nucleoside analogs, and active pharmaceutical intermediates. Its reactivity allows for the formation of oximes and other nitrogen-containing derivatives, which are important in drug development and fine chemical synthesis. Additionally, it is used in organic synthesis as a reagent for modifying carbonyl compounds, enabling the creation of functionalized molecules with tailored chemical properties. Ethoxyamine hydrochloride is also employed in analytical chemistry to derivatize aldehydes and ketones for chromatographic and spectroscopic analysis, facilitating accurate detection and quantification of trace compounds.
Benefits
The benefits of ethoxyamine hydrochloride stem from its high reactivity, water solubility, and stability in hydrochloride form. Its ability to react efficiently with carbonyl groups enables rapid and selective synthesis of oximes, which are valuable intermediates in pharmaceuticals and fine chemicals. This property allows for streamlined synthetic pathways, reducing the number of steps and improving overall efficiency in compound production. In analytical applications, it enhances the sensitivity and specificity of detection methods by forming stable derivatives suitable for HPLC, GC, or spectroscopic analysis. Its hydrochloride salt form improves handling safety and solubility in polar solvents, facilitating its use in both laboratory and industrial settings. Overall, ethoxyamine hydrochloride provides practical advantages in chemical reactivity, synthesis efficiency, and analytical reliability.
Conclusion
Ethoxyamine hydrochloride is an important chemical intermediate with broad applications in pharmaceuticals, organic synthesis, and analytical chemistry. Its reactivity with carbonyl compounds and ability to form stable derivatives make it valuable for drug development, fine chemical production, and sensitive analytical methods. The benefits of this compound include enhanced reaction efficiency, improved compound stability, and reliable analytical performance, making it an essential tool in both research and industrial chemical applications. Its versatility and practicality ensure continued relevance in modern chemical and pharmaceutical workflows.

