Cas no 2065-73-8 (Oxalic Acid-d2)

Oxalic Acid-d2 structure
Oxalic Acid-d2 structure
Product Name:Oxalic Acid-d2
CAS No:2065-73-8
MF:C2H2O4
MW:92.0472044944763
CID:257283
PubChem ID:159639
Update Time:2025-04-24

Oxalic Acid-d2 Chemical and Physical Properties

Names and Identifiers

    • Ethanedioic acid-d2
    • dideuterio oxalate
    • Oxalic Acid-d2
    • ethane(~2~H_2_)dioic acid
    • ethanedioic acid
    • Oxalic (2H)acid
    • CS-0202057
    • Oxalic [2H]acid
    • EINECS 218-181-1
    • HY-Y0262S
    • DTXSID50174689
    • NS00026710
    • 2065-73-8
    • Inchi: 1S/C2H2O4/c3-1(4)2(5)6/h(H,3,4)(H,5,6)/i/hD2
    • InChI Key: MUBZPKHOEPUJKR-ZSJDYOACSA-N
    • SMILES: O([2H])C(C(=O)O[2H])=O

Computed Properties

  • Exact Mass: 92.00786203g/mol
  • Monoisotopic Mass: 92.00786203g/mol
  • Isotope Atom Count: 2
  • Hydrogen Bond Donor Count: 2
  • Hydrogen Bond Acceptor Count: 4
  • Heavy Atom Count: 6
  • Rotatable Bond Count: 1
  • Complexity: 71.5
  • Covalently-Bonded Unit Count: 1
  • Defined Atom Stereocenter Count: 0
  • Undefined Atom Stereocenter Count : 0
  • Defined Bond Stereocenter Count: 0
  • Undefined Bond Stereocenter Count: 0
  • XLogP3: -0.3
  • Topological Polar Surface Area: 74.6?2

Experimental Properties

  • Density: 1.8±0.1 g/cm3
  • Melting Point: 190?°C (dec.)(lit.)
  • Boiling Point: 365.1±25.0 °C at 760 mmHg
  • Flash Point: 188.8±19.7 °C
  • Vapor Pressure: 0.0±1.7 mmHg at 25°C

Oxalic Acid-d2 Security Information

Oxalic Acid-d2 Pricemore >>

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Additional information on Oxalic Acid-d2

Ethanedioic Acid-d2: A Comprehensive Overview

Ethanedioic acid-d2, also known as d2-acetic acid, is a deuterated derivative of acetic acid. It is widely recognized by its CAS number, CAS No. 2065-73-8. This compound has gained significant attention in various scientific fields due to its unique properties and versatile applications. In this article, we will delve into the latest research findings, structural characteristics, and practical uses of Ethanedioic acid-d2.

The molecular structure of Ethanedioic acid-d2 consists of a carboxylic acid group attached to a methyl group, with two deuterium atoms replacing the hydrogens in the methyl group. This substitution introduces distinct nuclear magnetic resonance (NMR) properties, making it an invaluable tool in analytical chemistry. Recent studies have highlighted its role in isotopic labeling, particularly in metabolic studies and proteomics, where it serves as a stable isotope tracer.

One of the most notable advancements involving Ethanedioic acid-d2 is its application in the field of biochemistry. Researchers have utilized this compound to study enzyme kinetics and substrate specificity. For instance, a 2023 study published in the Journal of Biological Chemistry demonstrated that Ethanedioic acid-d2 can be employed as a substrate analog to investigate the catalytic mechanisms of acetyltransferases. This research underscores the importance of deuterated compounds in understanding enzymatic processes at a molecular level.

In materials science, Ethanedioic acid-d2 has found applications in the synthesis of metal-organic frameworks (MOFs). These materials are highly porous and exhibit exceptional stability, making them ideal for gas storage and catalysis. A recent investigation revealed that incorporating Ethanedioic acid-d2 into MOF synthesis enhances the material's thermal stability and mechanical robustness. This discovery opens new avenues for the development of advanced materials with tailored properties.

The pharmaceutical industry has also benefited from the use of Ethanedioic acid-d2. In drug metabolism studies, this compound serves as a stable isotope standard, enabling precise quantification of metabolites in biological samples. A 2023 review in Analytical Chemistry emphasized the critical role of deuterated compounds like Ethanedioic acid-d2 in ensuring accurate and reproducible results in metabolomics research.

Furthermore, advancements in analytical techniques have enhanced our ability to synthesize and characterize Ethanedioic acid-d2. High-resolution mass spectrometry (HRMS) and cryogenic electron microscopy (cryo-EM) have been instrumental in elucidating the compound's structural features and interaction dynamics with other molecules. These techniques have provided unprecedented insights into the behavior of Ethanedioic acid-d2 in complex biological systems.

In conclusion, Ethanedioic acid-d2, with its CAS number 2065-73-8, continues to be a pivotal compound in scientific research and industrial applications. Its unique properties make it indispensable in fields ranging from biochemistry to materials science. As ongoing research uncovers new potentials for this compound, we can expect even more innovative applications in the future.

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