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In vitro and In silico Studies on the Base Effect in Palladium‐Catalyzed Direct Arylation
Author(s) -
Lai YuYing,
Yang HauRen,
Lee HaoTing,
Tsai TienLiang,
Sun HanSheng
Publication year - 2020
Publication title -
asian journal of organic chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.846
H-Index - 44
eISSN - 2193-5815
pISSN - 2193-5807
DOI - 10.1002/ajoc.201900705
Subject(s) - chemistry , palladium , lewis acids and bases , catalysis , deprotonation , oxidative addition , reactivity (psychology) , computational chemistry , stereochemistry , combinatorial chemistry , organic chemistry , medicine , ion , alternative medicine , pathology
Palladium‐catalyzed direct‐arylation (DAr) has shown promise in synthesizing conjugated molecules and polymers. Herein, palladium‐catalyzed DAr reactions of 2‐bromo‐3‐alkyl‐thiophene in the presence of distinct bases including pivalate, acetate, carbonate, and hydroxide, are performed in   vitro and in silico . The entire pathways comprising oxidative addition (OA), concerted metalation‐deprotonation (CMD), and reductive elimination (RE) are investigated theoretically, indicating that the rate‐determining step varies with the base. Natural bond orbital analysis on the CMD transition states reveals that the classical Lewis pair and frustrated Lewis pair play important roles in the base‐coordinated CMD and the base‐assisted CMD, respectively. Multivariate regression analysis between the calculated CMD activation barrier and the orbital interactions yields a model equation, which is employed to further elucidate the characters of Lewis acid and Lewis base in the CMD. Overall, the computational results from the present study are in agreement with the experimental reaction yields and constitute the interpretation of the working principles for the DAr catalytic system, shedding light on further optimization and advance.

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