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135423-72-2

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135423-72-2 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 135423-72-2 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,3,5,4,2 and 3 respectively; the second part has 2 digits, 7 and 2 respectively.
Calculate Digit Verification of CAS Registry Number 135423-72:
(8*1)+(7*3)+(6*5)+(5*4)+(4*2)+(3*3)+(2*7)+(1*2)=112
112 % 10 = 2
So 135423-72-2 is a valid CAS Registry Number.

135423-72-2Relevant articles and documents

Highly Enantioselective O-H Bond Insertion Reaction of α-Alkyl- A nd α-Alkenyl-α-diazoacetates with Water

Li, You,Zhao, Yu-Tao,Zhou, Ting,Chen, Meng-Qing,Li, Yi-Pan,Huang, Ming-Yao,Xu, Zhen-Chuang,Zhu, Shou-Fei,Zhou, Qi-Lin

supporting information, p. 10557 - 10566 (2020/07/27)

Catalytic asymmetric reactions in which water is a substrate are rare. Enantioselective transition-metal-catalyzed insertion of carbenes into the O-H bond of water can be used to incorporate water into the stereogenic center, but the reported chiral catalysts give good results only when α-aryl-α-diazoesters are used as the carbene precursors. Herein we report the first highly enantioselective O-H bond insertion reactions between water and α-alkyl- A nd α-alkenyl-α-diazoesters as carbene precursors, with catalysis by a combination of achiral dirhodium complexes and chiral phosphoric acids or chiral phosphoramides. Participation of the phosphoric acids or phosphoramides in the carbene transfer reaction markedly suppressed competing side reactions, such as β-H migration, carbene dimerization, and olefin isomerization, and thus ensured good yields of the desired products. Fine-tuning of the ester moiety facilitated enantiocontrol of the proton transfer reactions of the enol intermediates and resulted in excellent enantioselectivity. This protocol represents an efficient new method for preparation of multifunctionalized chiral α-alkyl and α-alkenyl hydroxyl esters, which readily undergo various transformations and can thus be used for the synthesis of bioactive compounds. Mechanistic studies revealed that the phosphoric acids and phosphoramides promoted highly enantioselective [1,2]- A nd [1,3]-proton transfer reactions of the enol intermediates. Maximization of molecular orbital overlap in the transition states of the proton transfer reactions was the original driving force to involve the proton shuttle catalysts in this process.

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