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(R*,S*)-2-Methyl-α-methyloxiranemethanol is a chiral organic compound characterized by its unique structure, which includes a methyl group at the 2-position and an α-methyloxirane ring. (R*,S*)-2-Methyl-α-methyloxiranemethanol is notable for its stereochemistry, with the R* and S* designations indicating the specific arrangement of substituents around the chiral center. It is a versatile building block in organic synthesis, particularly in the preparation of complex molecules with controlled stereochemistry. The compound's properties, such as its reactivity and stability, make it valuable in the synthesis of pharmaceuticals, agrochemicals, and other specialty chemicals. Its potential applications span across various industries, highlighting its importance in modern chemical research and development.

22520-26-9

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22520-26-9 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 22520-26-9 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 2,2,5,2 and 0 respectively; the second part has 2 digits, 2 and 6 respectively.
Calculate Digit Verification of CAS Registry Number 22520-26:
(7*2)+(6*2)+(5*5)+(4*2)+(3*0)+(2*2)+(1*6)=69
69 % 10 = 9
So 22520-26-9 is a valid CAS Registry Number.

22520-26-9Upstream product

22520-26-9Downstream Products

22520-26-9Relevant academic research and scientific papers

Effect of additives on chemoselectivity and diastereoselectivity in the catalytic epoxidation of chiral allylic alcohols with hydrogen peroxide and binuclear manganese complexes

Kilic, Hamdullah,Adam, Waldemar,Alsters, Paul L.

experimental part, p. 1135 - 1140 (2009/07/04)

The catalytic oxidations of chiral allylic alcohols 2 by manganese complexes of the cyclic triamine 1,4,7-trimethyl-1,4,7-triazacyclononane (tmtacn) 1 and hydrogen peroxide as oxygen donor in the presence of co-catalyst are investigated to understand the

A highly chemoselective, diastereoselective, and regioselective epoxidation of chiral allylic alcohols with hydrogen peroxide, catalyzed by sandwich-type polyoxometalates: Enhancement of reactivity and control of selectivity by the hydroxy group through metal-alcoholate bonding

Adam, Waldemar,Alsters, Paul L.,Neumann, Ronny,Saha-Moeller, Chantu R.,Sloboda-Rozner, Dorit,Zhang, Rui

, p. 1721 - 1728 (2007/10/03)

Sandwich-type polyoxometalates (POMs), namely [VZnM2(ZnW9O34)2]q- [M = Mn(II), Ru(III), Fe(III), Pd(II), Pt(II), Zn(II); q = 10-12], are shown to catalyze selectively the epoxidation of chiral allylic alcohols with 30% hydrogen peroxide under mild conditions (ca. 20 °C) in an aqueous/organic biphasic system. The transition metals M in the central ring of polyoxometalate do not affect the reactivity, chemoselectivity, or stereoselectivity of the allylic alcohol epoxidation by hydrogen peroxide. Similar selectivities, albeit in significantly lower product yields, are observed for the lacunary Keggin POM [PW11O39]7-, in which a peroxotungstate complex has been shown to be the active oxidizing species. All these features support a tungsten peroxo complex rather than a high-valent transition-metal oxo species operates as the key intermediate in the sandwich-type POM-catalyzed epoxidations. On capping of the hydroxy functionality through acetylation or methylation, no reactivity of these hydroxy-protected substrates [1a(Ac) and 1a(Me)] is observed by these POMs. A template is proposed to account for the marked enhancement of reactivity and selectivity, in which the allylic alcohol is ligated through metal - alcoholate bonding, and the H2O2 oxygen source is activated in the form of a peroxotungsten complex. 1,3-Allylic strain promotes a high preference for the threo diastereomer and 1,2-allylic strain a high preference for the erythro diastereomer, whereas tungsten - alcoholate bonding furnishes high regioselectivity for the epoxidation of the allylic double bond. The estimated dihedral angle α of 50 - 70° for the metal - alcoholate-bonded template of the POM/H2O2 system provides the best compromise between 1,2A and 1,3A strain during the oxygen transfer. In contrast to acyclic allylic alcohols 1, the M-POM-catalyzed oxidation of the cyclic allylic alcohols 4 by H2O2 gives significant amounts of enone.

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