Exploring the Diverse Properties and Applications of D-Asparagine Monohydrate
D-Asparagine Monohydrate (CAS 2058-58-4) is a compound of significant interest across various scientific disciplines due to its unique properties and versatile applications. From its characteristic white crystalline appearance to its specific solubility and thermal behaviors, this amino acid derivative offers a valuable resource for researchers and industrial chemists alike. NINGBO INNO PHARMCHEM CO.,LTD. provides high-quality D-Asparagine Monohydrate, facilitating its use in a wide range of scientific endeavors.
Chemical and Physical Characteristics
The compound presents as a white powder crystal, indicating a solid state under standard conditions. Its molecular formula, C4H8N2O3, and molecular weight of 132.118 are fundamental to its chemical identity. A key characteristic is its optical activity, with a specific rotation of -34.2 to -36.5°, distinguishing it as the D-enantiomer. This stereochemical specificity is crucial for applications where chiral recognition is important, such as in asymmetric synthesis or biological studies. The reported assay of ≥99.0% purity highlights its suitability for demanding scientific applications. Its solubility profile is also noteworthy; while it shows moderate solubility in water (around 35 g/L at 20°C), its solubility in common organic solvents is negligible, reflecting its hydrophilic nature. Thermal analysis indicates a decomposition point around 280°C, suggesting good thermal stability for many processing conditions.
Diverse Applications in Research and Industry
D-Asparagine Monohydrate's utility extends beyond its primary role as a pharmaceutical intermediate. In scientific research, it plays a role in exploring metabolic pathways and enzyme kinetics. Its structure as an amino acid derivative makes it a subject of study in biochemistry and molecular biology. Researchers investigate its potential in various physiological processes, contributing to a deeper understanding of cellular functions and disease mechanisms. The compound’s specific enantiomeric form can be instrumental in studies requiring chiral specificity, such as in the development of stereoselective catalysts or chiral separation techniques. Furthermore, its presence in biological systems and its metabolic pathways make it a compound of interest in fields like neuroscience and environmental science, where its role in biological signaling or nutrient cycling might be explored. The availability of high-purity D-Asparagine Monohydrate from reliable sources like NINGBO INNO PHARMCHEM CO.,LTD. ensures that these research endeavors can proceed with the highest standards of accuracy and reproducibility. The ability to source this compound for custom synthesis projects further underscores its importance in scientific exploration, enabling chemists to build complex molecules with controlled stereochemistry.
Quality and Sourcing from NINGBO INNO PHARMCHEM CO.,LTD.
At NINGBO INNO PHARMCHEM CO.,LTD., we are committed to providing scientists and manufacturers with D-Asparagine Monohydrate that meets the highest standards of quality. Our stringent quality control processes ensure the compound's purity and consistent properties, making it a reliable choice for research and industrial applications. We understand the importance of precise specifications for scientific work, which is why our product undergoes rigorous testing. Whether you are conducting complex biochemical assays, developing new synthetic routes, or exploring novel therapeutic applications, our D-Asparagine Monohydrate is manufactured to support your critical objectives. Partner with us to access a dependable supply of this vital amino acid derivative.
Perspectives & Insights
Silicon Analyst 88
“provides high-quality D-Asparagine Monohydrate, facilitating its use in a wide range of scientific endeavors.”
Quantum Seeker Pro
“Chemical and Physical Characteristics The compound presents as a white powder crystal, indicating a solid state under standard conditions.”
Bio Reader 7
“This stereochemical specificity is crucial for applications where chiral recognition is important, such as in asymmetric synthesis or biological studies.”