TY - JOUR
T1 - Polystyrene-Cross-Linking Triphenylphosphine on a Porous Monolith
T2 - Enhanced Catalytic Activity for Aryl Chloride Cross-Coupling in Biphasic Flow
AU - Matsumoto, Hikaru
AU - Hoshino, Yu
AU - Iwai, Tomohiro
AU - Sawamura, Masaya
AU - Miura, Yoshiko
N1 - Funding Information:
This work was supported by JSPS KAKENHI grant number JP15H05801, JP16H01036, JP18J20345, JP19H02766, JP20H04793, JP20H04825, and JP20H05230.
Publisher Copyright:
Copyright © 2020 American Chemical Society.
PY - 2020/8/26
Y1 - 2020/8/26
N2 - Immobilized transition metals for continuous-flow catalyses are greatly in demand to achieve automation, scale-up, facile separation, regeneration, and energy-saving production with high level of sustainability and efficiency. Here, we report a tertiary phosphine immobilized on a macroporous monolith (M-PS-TPP) for the challenging Pd-catalyzed cross-coupling reaction of aryl chloride in a continuous-flow system. The monolithic and macroporous structure of M-PS-TPP was fabricated by bulk polymerization in the presence of a high internal phase emulsion (HIPE) template. Owing to the large pore size and high porosity, the M-PS-TPP showed high permeability against continuous flow of the mobile phase. The continuous-flow Suzuki-Miyaura cross-coupling reaction was realized by permeation of organic/aqueous media containing inorganic salt through a Pd-loaded monolith (M-PS-TPP-Pd) column without serious clogging. Controlling coordination chemistry and hydrodynamics of M-PS-TPP-Pd boosted highly active phosphine-metal complex formation and fast mass transfer of reactants. Indeed, the M-PS-TPP-Pd column showed surprisingly higher yields (∼93%) and turnover numbers (2704) under continuous-flow conditions than that under batch conditions (∼6%).
AB - Immobilized transition metals for continuous-flow catalyses are greatly in demand to achieve automation, scale-up, facile separation, regeneration, and energy-saving production with high level of sustainability and efficiency. Here, we report a tertiary phosphine immobilized on a macroporous monolith (M-PS-TPP) for the challenging Pd-catalyzed cross-coupling reaction of aryl chloride in a continuous-flow system. The monolithic and macroporous structure of M-PS-TPP was fabricated by bulk polymerization in the presence of a high internal phase emulsion (HIPE) template. Owing to the large pore size and high porosity, the M-PS-TPP showed high permeability against continuous flow of the mobile phase. The continuous-flow Suzuki-Miyaura cross-coupling reaction was realized by permeation of organic/aqueous media containing inorganic salt through a Pd-loaded monolith (M-PS-TPP-Pd) column without serious clogging. Controlling coordination chemistry and hydrodynamics of M-PS-TPP-Pd boosted highly active phosphine-metal complex formation and fast mass transfer of reactants. Indeed, the M-PS-TPP-Pd column showed surprisingly higher yields (∼93%) and turnover numbers (2704) under continuous-flow conditions than that under batch conditions (∼6%).
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U2 - 10.1021/acs.iecr.0c02404
DO - 10.1021/acs.iecr.0c02404
M3 - Article
AN - SCOPUS:85092748937
SN - 0888-5885
VL - 59
SP - 15179
EP - 15187
JO - Industrial & Engineering Chemistry Research
JF - Industrial & Engineering Chemistry Research
IS - 34
ER -