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Highly efficient removal of Cu(ii) by novel dendritic polyamine–pyridine-grafted chitosan beads from complicated salty and acidic wastewaters

In this study, dendritic polyamine chitosan beads with and without 2-aminomethyl pyridine were facilely prepared and characterized. Compared to CN (without the pyridine function), more adsorption active sites, larger pores, higher nitrogen content, higher specific surface area, and higher strength c...

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Detalles Bibliográficos
Autores principales: Wang, Li-Li, Ling, Chen, Li, Bang-Sen, Zhang, Da-Shuai, Li, Chen, Zhang, Xiao-Peng, Shi, Zai-Feng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9054208/
https://www.ncbi.nlm.nih.gov/pubmed/35520446
http://dx.doi.org/10.1039/d0ra02034f
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author Wang, Li-Li
Ling, Chen
Li, Bang-Sen
Zhang, Da-Shuai
Li, Chen
Zhang, Xiao-Peng
Shi, Zai-Feng
author_facet Wang, Li-Li
Ling, Chen
Li, Bang-Sen
Zhang, Da-Shuai
Li, Chen
Zhang, Xiao-Peng
Shi, Zai-Feng
author_sort Wang, Li-Li
collection PubMed
description In this study, dendritic polyamine chitosan beads with and without 2-aminomethyl pyridine were facilely prepared and characterized. Compared to CN (without the pyridine function), more adsorption active sites, larger pores, higher nitrogen content, higher specific surface area, and higher strength could be obtained for CNP (with the pyridine function). CNP microspheres afforded a larger adsorption capacity than those obtained by CN for different pH values; further, the uptake amounts of Cu(ii) were 0.84 and 1.12 mmol g(−1) for CN and CNP beads, respectively, at pH 5. The CNP microspheres could scavenge Cu(ii) from highly acidic and salty solutions: the maximum simulated uptake amount of 1.93 mmol g(−1) at pH 5 could be achieved. Due to the strong bonding ability and weakly basic property of pyridine groups, the adsorption capacity of Cu(ii) at pH 1 was 0.75 mmol g(−1) in highly salty solutions, which was comparative to those obtained from the commercial pyridine chelating resin M4195 (Q(Cu(II)) = 0.78 mmol g(−1) at pH 1). In addition, a distinct salt-promotion effect could be observed for CNP beads at both pH 5 and 1. Therefore, the prepared adsorbent CNP beads can have promising potential applications in the selective capturing of heavy metals in complex solutions with higher concentrations of H(+) and inorganic salts, such as wastewaters from electroplating liquid and battery industries.
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spelling pubmed-90542082022-05-04 Highly efficient removal of Cu(ii) by novel dendritic polyamine–pyridine-grafted chitosan beads from complicated salty and acidic wastewaters Wang, Li-Li Ling, Chen Li, Bang-Sen Zhang, Da-Shuai Li, Chen Zhang, Xiao-Peng Shi, Zai-Feng RSC Adv Chemistry In this study, dendritic polyamine chitosan beads with and without 2-aminomethyl pyridine were facilely prepared and characterized. Compared to CN (without the pyridine function), more adsorption active sites, larger pores, higher nitrogen content, higher specific surface area, and higher strength could be obtained for CNP (with the pyridine function). CNP microspheres afforded a larger adsorption capacity than those obtained by CN for different pH values; further, the uptake amounts of Cu(ii) were 0.84 and 1.12 mmol g(−1) for CN and CNP beads, respectively, at pH 5. The CNP microspheres could scavenge Cu(ii) from highly acidic and salty solutions: the maximum simulated uptake amount of 1.93 mmol g(−1) at pH 5 could be achieved. Due to the strong bonding ability and weakly basic property of pyridine groups, the adsorption capacity of Cu(ii) at pH 1 was 0.75 mmol g(−1) in highly salty solutions, which was comparative to those obtained from the commercial pyridine chelating resin M4195 (Q(Cu(II)) = 0.78 mmol g(−1) at pH 1). In addition, a distinct salt-promotion effect could be observed for CNP beads at both pH 5 and 1. Therefore, the prepared adsorbent CNP beads can have promising potential applications in the selective capturing of heavy metals in complex solutions with higher concentrations of H(+) and inorganic salts, such as wastewaters from electroplating liquid and battery industries. The Royal Society of Chemistry 2020-05-27 /pmc/articles/PMC9054208/ /pubmed/35520446 http://dx.doi.org/10.1039/d0ra02034f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wang, Li-Li
Ling, Chen
Li, Bang-Sen
Zhang, Da-Shuai
Li, Chen
Zhang, Xiao-Peng
Shi, Zai-Feng
Highly efficient removal of Cu(ii) by novel dendritic polyamine–pyridine-grafted chitosan beads from complicated salty and acidic wastewaters
title Highly efficient removal of Cu(ii) by novel dendritic polyamine–pyridine-grafted chitosan beads from complicated salty and acidic wastewaters
title_full Highly efficient removal of Cu(ii) by novel dendritic polyamine–pyridine-grafted chitosan beads from complicated salty and acidic wastewaters
title_fullStr Highly efficient removal of Cu(ii) by novel dendritic polyamine–pyridine-grafted chitosan beads from complicated salty and acidic wastewaters
title_full_unstemmed Highly efficient removal of Cu(ii) by novel dendritic polyamine–pyridine-grafted chitosan beads from complicated salty and acidic wastewaters
title_short Highly efficient removal of Cu(ii) by novel dendritic polyamine–pyridine-grafted chitosan beads from complicated salty and acidic wastewaters
title_sort highly efficient removal of cu(ii) by novel dendritic polyamine–pyridine-grafted chitosan beads from complicated salty and acidic wastewaters
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9054208/
https://www.ncbi.nlm.nih.gov/pubmed/35520446
http://dx.doi.org/10.1039/d0ra02034f
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