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157022-68-9

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157022-68-9 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 157022-68-9 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,5,7,0,2 and 2 respectively; the second part has 2 digits, 6 and 8 respectively.
Calculate Digit Verification of CAS Registry Number 157022-68:
(8*1)+(7*5)+(6*7)+(5*0)+(4*2)+(3*2)+(2*6)+(1*8)=119
119 % 10 = 9
So 157022-68-9 is a valid CAS Registry Number.

157022-68-9Downstream Products

157022-68-9Relevant academic research and scientific papers

Base-Mediated Borylsilylation/Silylation of Ammonium Salts with Silylborane

Du, Xian,Guan, Yun-Shi,Li, Yi-Hui,Liang, Guohai,Luo, Yong,Qi, Wan-Ying,Wang, Zi-Ying,Wei, Xun,Xu, Xiao-Hong,Yuan, Han,Zhen, Jing-Song

supporting information, p. 5988 - 5992 (2021/08/31)

This work describes a base-mediated borylsilylation of benzylic ammonium salts to synthesize geminal silylboronates bearing benzylic proton under mild reaction conditions. Deaminative silylation of aryl ammonium salts was also achieved in the presence of

In Situ Generation of Silyl Anion Species through Si?B Bond Activation for the Concerted Nucleophilic Aromatic Substitution of Fluoroarenes

Kojima, Kumiko,Nagashima, Yuki,Wang, Chao,Uchiyama, Masanobu

, p. 277 - 280 (2019/04/04)

In situ generated silyl anion species enable the concerted nucleophilic aromatic substitution of fluoroarenes. Model DFT calculations indicated that addition of a base to a silylborane would thermodynamically form a silyl borate complex and then kinetically release a silyl anion species through Si?B bond cleavage, and that the in situ generated silyl anion equivalent would further react with a fluoroarene through a concerted nucleophilic aromatic substitution pathway with an activation barrier of ca. 20 kcal/mol to afford the silylated product with a large energy gain. Experiments confirmed that the defluorosilylation reaction took place smoothly at room temperature simply upon mixing fluoroarenes with commercially available silylborane and NaOtBu. Radical scavenger and radical clock reaction experiments provide further evidence for the in situ generation of the silyl anion.

Activator-free palladium-catalyzed silylation of aryl chlorides with silylsilatranes

Yamamoto, Yutaro,Matsubara, Hiroshi,Murakami, Kei,Yorimitsu, Hideki,Osuka, Atsuhiro

, p. 219 - 224 (2015/02/05)

The palladium-catalyzed silylation of aryl chlorides with silylsilatranes proceeds under activator-free conditions; hence, wide functional group compatibility is displayed and boryl and siloxy groups are able to survive. Experimental and computational stu

Generation and suppression of 3-/4-functionalized benzynes using zinc ate base (TMP-Zn-ate): New approaches to multisubstituted benzenes

Uchiyama, Masanobu,Kobayashi, Yuri,Furuyama, Taniyuki,Nakamura, Shinji,Kajihara, Yumiko,Miyoshi, Tomoko,Sakamoto, Takao,Kondo, Yoshinori,Morokuma, Keiji

, p. 472 - 480 (2008/10/09)

We present full details of our new methods for preparing functionalized benzynes with lithium di-alkyl(2,2,6,6-tetramethylpiperidino)zincate (R 2Zn(TMP)Li) through deprotonative zincation as a key reaction. In this system, by choosing appropriate ligands for the zincate, either regioselective zincation of functionalized haloaromatics or the generation of substituted benzynes can be controlled in good yields with excellent chemoselectivity, using the same substrate. Zincation with tBu 2Zn(TMP)Li followed by electrophilic trapping or zincation with Me2Zn(TMP)Li followed by nucleophilic or diene trapping is shown to be a powerful tool for the chemoselective preparation of 1,2,3-/1,2,4- trisubstituted benzene derivatives. These methods offer far greater generality than previous methods for the synthesis of multifunctionalized benzenes. Computational/theoretical studies of the reaction mechanism of this unique benzyne formation indicated that preferential coordination of the dialkylzinc moiety of zincate to halogen is the reason for the reduced activation energy of the elimination, that is, for the formation of the benzyne. The role of the ligands on Zn in accelerating/decelerating the elimination is also discussed.

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