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<18O>-acetaldehyde, also known as oxygen-18 labeled acetaldehyde, is a chemical compound with the molecular formula CH3CHO, where one of the oxygen atoms is replaced by the isotope oxygen-18. This stable isotope has eight protons and ten neutrons, making it heavier than the naturally occurring oxygen-16 isotope. <18O>-acetaldehyde is primarily used in scientific research and medical studies to trace metabolic pathways, study enzyme kinetics, and investigate the mechanisms of various chemical reactions. It is synthesized through the isotopic labeling of acetaldehyde, which involves replacing one of the oxygen atoms with oxygen-18 to create a distinct molecule that can be tracked and analyzed. <18O>-acetaldehyde is particularly valuable in fields such as biochemistry, pharmacology, and environmental science, where understanding the behavior of molecules at the atomic level is crucial.

3752-37-2

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3752-37-2 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 3752-37-2 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 3,7,5 and 2 respectively; the second part has 2 digits, 3 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 3752-37:
(6*3)+(5*7)+(4*5)+(3*2)+(2*3)+(1*7)=92
92 % 10 = 2
So 3752-37-2 is a valid CAS Registry Number.

3752-37-2Upstream product

3752-37-2Downstream Products

3752-37-2Relevant articles and documents

Highly efficient visible-light photocatalytic ethane oxidation into ethyl hydroperoxide as a radical reservoir

Zhu, Yao,Fang, Siyuan,Chen, Shaoqin,Tong, Youjie,Wang, Chunling,Hu, Yun Hang

, p. 5825 - 5833 (2021)

Photocatalytic ethane conversion into value-added chemicals is a great challenge especially under visible light irradiation. The production of ethyl hydroperoxide (CH3CH2OOH), which is a promising radical reservoir for regulating the oxidative stress in cells, is even more challenging due to its facile decomposition. Here, we demonstrated a design of a highly efficient visible-light-responsive photocatalyst, Au/WO3, for ethane oxidation into CH3CH2OOH, achieving an impressive yield of 1887 μmol gcat?1in two hours under visible light irradiation at room temperature for the first time. Furthermore, thermal energy was introduced into the photocatalytic system to increase the driving force for ethane oxidation, enhancing CH3CH2OOH production by six times to 11?233 μmol gcat?1at 100 °C and achieving a significant apparent quantum efficiency of 17.9% at 450 nm. In addition, trapping active species and isotope-labeling reactants revealed the reaction pathway. These findings pave the way for scalable ethane conversion into CH3CH2OOH as a potential anticancer drug.

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