Highly active pandanus nanocellulose-supported poly(amidoxime) copper (II) complex for Ullmann cross-coupling reaction

The transition metal-catalyzed chemical transformation of organic electrophiles, and organometallic reagents have turned up as an exceedingly robust synthetic tool. The evolution of transition metal catalysts has attained a stage of civilization that authorizes for an extensive scope of chemical bon...

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Main Authors: Choong, Jian Fui, Tang, Xin Ting, Mohd Sani Sarjadi, Md Lutfor Rahman
Format: Article
Language:English
Published: MDPI 2020
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Online Access:https://eprints.ums.edu.my/id/eprint/42495/1/FULL%20TEXT.pdf
https://eprints.ums.edu.my/id/eprint/42495/
https://doi.org/10.3390/ECCS2020-07530
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spelling my.ums.eprints.424952024-12-31T03:18:34Z https://eprints.ums.edu.my/id/eprint/42495/ Highly active pandanus nanocellulose-supported poly(amidoxime) copper (II) complex for Ullmann cross-coupling reaction Choong, Jian Fui Tang, Xin Ting Mohd Sani Sarjadi Md Lutfor Rahman QK1-474.5 General Including geographical distribution SB1-1110 Plant culture The transition metal-catalyzed chemical transformation of organic electrophiles, and organometallic reagents have turned up as an exceedingly robust synthetic tool. The evolution of transition metal catalysts has attained a stage of civilization that authorizes for an extensive scope of chemical bonds formation partners to be combined efficiently. The applications of Cu-based nanoparticles have received great attention owing to the earth-abundant, low toxicity and inexpensive. Due to these characteristics, copper nanoparticles have generated a great deal of interest especially in the field of catalysis. In this study, poly(acrylonitrile) was synthesized by undergoes free-radical initiation process and followed by Beckmann rearrangement with hydroxylamine solution converted into the poly(amidoxime) ligand and anchored the copper onto poly(amidoxime). Cu(II)@PAM was characterized using different techniques such as FTIR, FESEM, EDX, TEM, TGA, DSC, ICP-OES, and XPS analyses. The Cu(II)@PAM showed high stability and high catalytic activity in a wide variety of electrophilic substituted phenols with substituted aryl/benzyl halides. 0.15 mol%, ±3 mg of Cu(II)@PAM could efficiently promote Ullmann reaction to give the corresponding coupling product up to 99 % yields. The complex was easy separated and recovered from the reaction mixture by simple filtration. MDPI 2020 Article NonPeerReviewed text en https://eprints.ums.edu.my/id/eprint/42495/1/FULL%20TEXT.pdf Choong, Jian Fui and Tang, Xin Ting and Mohd Sani Sarjadi and Md Lutfor Rahman (2020) Highly active pandanus nanocellulose-supported poly(amidoxime) copper (II) complex for Ullmann cross-coupling reaction. Chemistry proceedings, 2. pp. 1-7. https://doi.org/10.3390/ECCS2020-07530
institution Universiti Malaysia Sabah
building UMS Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Sabah
content_source UMS Institutional Repository
url_provider http://eprints.ums.edu.my/
language English
topic QK1-474.5 General Including geographical distribution
SB1-1110 Plant culture
spellingShingle QK1-474.5 General Including geographical distribution
SB1-1110 Plant culture
Choong, Jian Fui
Tang, Xin Ting
Mohd Sani Sarjadi
Md Lutfor Rahman
Highly active pandanus nanocellulose-supported poly(amidoxime) copper (II) complex for Ullmann cross-coupling reaction
description The transition metal-catalyzed chemical transformation of organic electrophiles, and organometallic reagents have turned up as an exceedingly robust synthetic tool. The evolution of transition metal catalysts has attained a stage of civilization that authorizes for an extensive scope of chemical bonds formation partners to be combined efficiently. The applications of Cu-based nanoparticles have received great attention owing to the earth-abundant, low toxicity and inexpensive. Due to these characteristics, copper nanoparticles have generated a great deal of interest especially in the field of catalysis. In this study, poly(acrylonitrile) was synthesized by undergoes free-radical initiation process and followed by Beckmann rearrangement with hydroxylamine solution converted into the poly(amidoxime) ligand and anchored the copper onto poly(amidoxime). Cu(II)@PAM was characterized using different techniques such as FTIR, FESEM, EDX, TEM, TGA, DSC, ICP-OES, and XPS analyses. The Cu(II)@PAM showed high stability and high catalytic activity in a wide variety of electrophilic substituted phenols with substituted aryl/benzyl halides. 0.15 mol%, ±3 mg of Cu(II)@PAM could efficiently promote Ullmann reaction to give the corresponding coupling product up to 99 % yields. The complex was easy separated and recovered from the reaction mixture by simple filtration.
format Article
author Choong, Jian Fui
Tang, Xin Ting
Mohd Sani Sarjadi
Md Lutfor Rahman
author_facet Choong, Jian Fui
Tang, Xin Ting
Mohd Sani Sarjadi
Md Lutfor Rahman
author_sort Choong, Jian Fui
title Highly active pandanus nanocellulose-supported poly(amidoxime) copper (II) complex for Ullmann cross-coupling reaction
title_short Highly active pandanus nanocellulose-supported poly(amidoxime) copper (II) complex for Ullmann cross-coupling reaction
title_full Highly active pandanus nanocellulose-supported poly(amidoxime) copper (II) complex for Ullmann cross-coupling reaction
title_fullStr Highly active pandanus nanocellulose-supported poly(amidoxime) copper (II) complex for Ullmann cross-coupling reaction
title_full_unstemmed Highly active pandanus nanocellulose-supported poly(amidoxime) copper (II) complex for Ullmann cross-coupling reaction
title_sort highly active pandanus nanocellulose-supported poly(amidoxime) copper (ii) complex for ullmann cross-coupling reaction
publisher MDPI
publishDate 2020
url https://eprints.ums.edu.my/id/eprint/42495/1/FULL%20TEXT.pdf
https://eprints.ums.edu.my/id/eprint/42495/
https://doi.org/10.3390/ECCS2020-07530
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score 13.23648