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Masanori Yoshida

Researcher at Hokkaido University

Publications -  63
Citations -  812

Masanori Yoshida is an academic researcher from Hokkaido University. The author has contributed to research in topics: Michael reaction & Catalysis. The author has an hindex of 20, co-authored 62 publications receiving 768 citations.

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Stereoselective generation of (E)- and (Z)-2-fluoroalkylidene-type carbenoids from (2-fluoro-1-alkenyl)iodonium salts and their application for stereoselective synthesis of fluoroalkenes.

TL;DR: Alkylidene-type carbenoids, generated from (Z)- or (E)-(2-fluoro-1-alkenyl)iodonium salts by treatment with LDA, reacted with trialkylboranes to give (E- or (Z-Z)-(fluoroalkinyl)boranes stereoselectively.
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Stereoselective synthesis of (E)- and (Z)-Fluoroalkenylboronates using 2-fluoroalkylideneiodonium ylides generated from (2-fluoro-1-alkenyl)iodonium salts.

TL;DR: The resulting pinacol esters of (fluoroalkenyl)boranes were used for the stereoselective synthesis of trisubstituted fluoroalkenes by cross-coupling reactions.
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Regio- and stereoselective synthesis of fluoroalkadienes using β-fluoroalkenyliodonium salt

TL;DR: In this article, the palladium-catalyzed coupling reaction of (2-fluoroalkenyl)(p-tolyl)iodonium fluorides with α,β-unsaturated carbonyl compounds and tributylvinyltin was used to synthesize (3E)-4-fluoride-1,3-dienes.
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Primary Amino Acid Lithium Salt-Catalyzed Asymmetric Michael Addition of Carbon Nucleophiles to Enones

TL;DR: Asymmetric Michael addition of carbon nucleophiles, nitroalkanes and a β-ketoester, to enones was investigated by using a primary amino acid lithium salt as a catalyst.
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Mechanistic study of asymmetric Michael addition of malonates to enones catalyzed by a primary amino acid lithium salt

TL;DR: In this article, a mechanistic study was carried out for the asymmetric Michael addition reaction of malonates to enones catalyzed by a primary amino acid lithium salt to elucidate the origin of asymmetric induction.