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Pd based on 2‐Aminopyrimidine and 1 H ‐benzo[ d ]imidazol‐2‐amine functionalizedFe 3 O 4 nanoparticles as novel recyclable magnetic nanocatalysts for Ullmann coupling reaction
Author(s) -
Chen Jin,
Dai Linfang,
Li Jiayu,
Mohammadnia Majid
Publication year - 2020
Publication title -
applied organometallic chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.53
H-Index - 71
eISSN - 1099-0739
pISSN - 0268-2605
DOI - 10.1002/aoc.5708
Subject(s) - nanomaterial based catalyst , catalysis , chemistry , leaching (pedology) , amine gas treating , magnetic nanoparticles , nanoparticle , phenol , palladium , nuclear chemistry , solvent , green chemistry , organic chemistry , nanotechnology , reaction mechanism , materials science , environmental science , soil science , soil water
In this study, Pd based on 2‐Aminopyrimidine and 1 H ‐benzo[ d ]imidazol‐2‐amine functionalized Fe 3 O 4 magnetic nanoparticles [(Pd‐APM‐PSi‐Fe 3 O 4 ) and (Pd‐BIA‐PSi‐Fe 3 O 4 )] was designed and used for the synthesis of di aryl ether by Ulmann cross‐coupling reactions. Ulmann reaction performed with mixing of the arylhalides and phenol derivatives in DMF solvent. The prepared catalysts were characterized with various analytical techniques such as FT‐IR, XRD, TGA, SEM, TEM, EDX, ICP and VSM. Pd‐APM‐PSi‐Fe 3 O 4 and Pd‐BIA‐PSi‐Fe 3 O 4 catalysts demonstrated good to excellent yields catalytic efficiency for Ulmann reactions in comparison with to commercial palladium catalysts. The catalyst is easily recycled and reused without loss of the catalytic activity. The combined merits of reusable catalyst conditions make the condensation with safe operation, no leaching of pd into environment, low pollution, rapid access to products and simple workup. Also, these novel magnetic nanocatalysts are superior to the industry standard Pd in every relevant aspect. They feature a way higher initial activity, a much more convenient separation, better recycling, and less contamination of the products. Last but not least, they can be very easily prepared from commercially available Fe 3 O 4 nanoparticles using standard laboratory equipment.
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