Cas no 90363-39-6 (Methyl Caprate-d3)

Methyl Caprate-d3 (Methyl Decanoate-d3) is a deuterated ester used as a stable isotope-labeled internal standard in mass spectrometry and analytical chemistry applications. Its key advantages include high isotopic purity (typically ≥98% D), ensuring minimal interference in quantitative analyses. The deuterium substitution at three positions enhances molecular stability, reducing metabolic degradation in biological studies. This compound is particularly valuable in lipidomics, metabolic research, and tracer studies where precise quantification of fatty acid derivatives is required. Its compatibility with GC-MS and LC-MS techniques makes it a reliable reference material for method validation and calibration. The compound's well-defined structure and consistent performance contribute to reproducible experimental results.
Methyl Caprate-d3 structure
Methyl Caprate-d3 structure
Product Name:Methyl Caprate-d3
CAS No:90363-39-6
MF:C11H22O2
MW:189.309669017792
CID:2086317
Update Time:2025-05-22

Methyl Caprate-d3 Chemical and Physical Properties

Names and Identifiers

    • Methyl Caprate-d3
    • Inchi: 1S/C11H22O2/c1-3-4-5-6-7-8-9-10-11(12)13-2/h3-10H2,1-2H3/i2D3
    • InChI Key: YRHYCMZPEVDGFQ-BMSJAHLVSA-N
    • SMILES: C(OC([2H])([2H])[2H])(=O)CCCCCCCCC

Methyl Caprate-d3 Pricemore >>

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Additional information on Methyl Caprate-d3

Methyl Caprate-d3: A Comprehensive Overview

Methyl Caprate-d3, also known by its CAS number 90363-39-6, is a deuterated compound that has garnered significant attention in recent scientific research due to its unique properties and applications. This compound, which is a derivative of methyl caprate with three deuterium atoms, has been extensively studied for its role in various fields, including organic synthesis, analytical chemistry, and materials science.

The molecular structure of Methyl Caprate-d3 consists of a decanoic acid moiety with a methyl ester group and three deuterium atoms strategically incorporated into the molecule. This deuterium substitution not only alters the physical and chemical properties of the compound but also enhances its stability and reactivity in certain reactions. Recent studies have highlighted the importance of Methyl Caprate-d3 in the development of advanced materials, particularly in the synthesis of high-performance polymers and coatings.

One of the most notable applications of Methyl Caprate-d3 is in the field of neutron scattering research. The presence of deuterium atoms allows researchers to study molecular dynamics and structural properties with unprecedented precision. This has led to breakthroughs in understanding the behavior of complex molecular systems under various conditions, contributing significantly to advancements in materials science and nanotechnology.

In addition to its role in materials science, Methyl Caprate-d3 has also found applications in biochemistry and pharmacology. Researchers have utilized this compound as a precursor for synthesizing bioactive molecules, including potential drug candidates. The deuterium substitution has been shown to improve the pharmacokinetic properties of these molecules, making them more effective and less prone to metabolic degradation.

The synthesis of Methyl Caprate-d3 involves a multi-step process that requires precise control over reaction conditions to ensure high purity and isotopic enrichment. Recent advancements in catalytic methods have enabled more efficient production of this compound, reducing costs and improving scalability for industrial applications.

From an environmental perspective, the use of Methyl Caprate-d3 is considered safe and sustainable due to its non-toxic nature and biodegradability. Studies have shown that this compound does not pose significant risks to aquatic life or soil ecosystems when used responsibly, making it an ideal choice for eco-friendly chemical processes.

In conclusion, Methyl Caprate-d3 (CAS No. 90363-39-6) is a versatile compound with a wide range of applications across multiple disciplines. Its unique properties, derived from the strategic incorporation of deuterium atoms, continue to drive innovation in scientific research and industrial processes. As new research emerges, the potential for this compound to contribute to groundbreaking discoveries remains vast and exciting.

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