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2-deuterio-[1,4]benzoquinone is a chemical compound with the molecular formula C6D2O2, where "D" represents deuterium, a stable isotope of hydrogen. 2-deuterio-[1,4]benzoquinone is a derivative of benzoquinone, an organic compound with the formula C6H4O2, which is a colorless, crystalline solid that is an important intermediate in the chemical industry. The presence of deuterium in 2-deuterio-[1,4]benzoquinone replaces two hydrogen atoms in the benzoquinone structure, which can affect its chemical properties and reactivity. Deuterium-labeled compounds like this are often used in scientific research to study reaction mechanisms, isotope effects, and to trace the movement of atoms within chemical reactions. The deuteration can also be used to enhance the stability of the compound or to differentiate it from its non-deuterated counterpart in analytical techniques.

2237-15-2

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2237-15-2 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 2237-15-2 includes 7 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 4 digits, 2,2,3 and 7 respectively; the second part has 2 digits, 1 and 5 respectively.
Calculate Digit Verification of CAS Registry Number 2237-15:
(6*2)+(5*2)+(4*3)+(3*7)+(2*1)+(1*5)=62
62 % 10 = 2
So 2237-15-2 is a valid CAS Registry Number.

2237-15-2Upstream product

2237-15-2Downstream Products

2237-15-2Relevant academic research and scientific papers

Hydroxylation of aromatics with the help of a non-haem FeOOH: A mechanistic study under single-turnover and catalytic conditions

Thibon, Aurore,Jollet, Veronique,Ribal, Caroline,Senechal-David, Katell,Billon, Laurianne,Sorokin, Alexander B.,Banse, Frederic

, p. 2715 - 2724 (2012)

Ferric-hydroperoxo complexes have been identified as intermediates in the catalytic cycle of biological oxidants, but their role as key oxidants is still a matter of debate. Among the numerous synthetic low-spin FeIII(OOH) complexes characterized to date, [(L52)Fe(OOH)] 2+ is the only one that has been isolated in the solid state at low temperature, which has provided a unique opportunity for inspecting its oxidizing properties under single-turnover conditions. In this report we show that [(L52)Fe(OOH)]2+ decays in the presence of aromatic substrates, such as anisole and benzene in acetonitrile, with first-order kinetics. In addition, the phenol products are formed from the aromatic substrates with similar first-order rate constants. Combining the kinetic data obtained at different temperatures and under different single-turnover experimental conditions with experiments performed under catalytic conditions by using the substrate [1,3,5-D3]benzene, which showed normal kinetic isotope effects (KIE>1) and a notable hydride shift (NIH shift), has allowed us to clarify the role played by FeIII(OOH) in aromatic oxidation. Several lines of experimental evidence in support of the previously postulated mechanism for the formation of two caged Fe IV(O) and OH. species from the FeIII(OOH) complex have been obtained for the first time. After homolytic O-O cleavage, a caged pair of oxidants [FeIVO+HO.] is generated that act in unison to hydroxylate the aromatic ring: HO. attacks the ring to give a hydroxycyclohexadienyl radical, which is further oxidized by Fe IVO to give a cationic intermediate that gives rise to a NIH shift upon ketonization before the final re-aromatization step. Spin-trapping experiments in the presence of 5,5-dimethyl-1-pyrroline N-oxide and GC-MS analyses of the intermediate products further support the proposed mechanism. Oxidation by FeIII(OOH): Investigations on a genuine non-haem Fe III(OOH) intermediate (see figure) in the presence of either aromatic substrates or the probe substrate [1,3,5-D3]benzene has clarified the role played by FeIII(OOH) in aromatic oxidations. Evidence for the formation of two caged FeIV(O) and OH. species from FeIII(OOH) has been obtained for the first time. These oxidants act in unison to give phenol products with normal kinetic isotope effects and notable hydride shifts. Copyright

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