Cargando…

Application of amino-hypophosphite polyampholyte for purification of wastewater containing Ni(ii) ions

This study investigated the sorption of Ni(ii) ions from an aqueous solution using novel, synthetic amino-hypophosphite polyampholyte resin (AHP) in a batch adsorption system. The removal of Ni(ii) ions was determined as a function of pH (2.0–8.0), initial concentration of Ni(ii) ions (2.0–20.0 mM),...

Descripción completa

Detalles Bibliográficos
Autores principales: Ulatowska, Justyna, Stala, Łukasz, Trzęsowska, Natasza, Polowczyk, Izabela
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10493852/
https://www.ncbi.nlm.nih.gov/pubmed/37701283
http://dx.doi.org/10.1039/d3ra04543a
_version_ 1785104558640332800
author Ulatowska, Justyna
Stala, Łukasz
Trzęsowska, Natasza
Polowczyk, Izabela
author_facet Ulatowska, Justyna
Stala, Łukasz
Trzęsowska, Natasza
Polowczyk, Izabela
author_sort Ulatowska, Justyna
collection PubMed
description This study investigated the sorption of Ni(ii) ions from an aqueous solution using novel, synthetic amino-hypophosphite polyampholyte resin (AHP) in a batch adsorption system. The removal of Ni(ii) ions was determined as a function of pH (2.0–8.0), initial concentration of Ni(ii) ions (2.0–20.0 mM), resin dosage (1.0–10.0 g dm(−3)), contact time (0.04–24 h), and temperature (298–318 K). Moreover, continuous fixed-bed column sorption was also studied using model solutions and actual wastewater from the galvanising plant. The batch sorption experimental data showed that the maximum pH for efficient Ni(ii) ion removal was about 5.0. An equilibrium was reached after about 24 hours. The kinetics results were fitted using pseudo-first-order (PFO), pseudo-second-order (PSO), liquid film (LFD), and intraparticle diffusion (IPD) models. Freundlich and Langmuir isotherm models were applied for sorption equilibrium data. The maximum sorption capacity was obtained from the Langmuir equation to be 2.39, 2.52, and 2.62 mmol g(−1) at 298, 308, and 318 K, respectively. The thermodynamic parameters for the sorption of Ni(ii) ions on AHP imply the endothermic and spontaneous character of the process. The experimental results demonstrated that amino-hypophosphite polyampholyte resin could be used to effectively remove Ni(ii) ions from model solutions and real wastewater.
format Online
Article
Text
id pubmed-10493852
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-104938522023-09-12 Application of amino-hypophosphite polyampholyte for purification of wastewater containing Ni(ii) ions Ulatowska, Justyna Stala, Łukasz Trzęsowska, Natasza Polowczyk, Izabela RSC Adv Chemistry This study investigated the sorption of Ni(ii) ions from an aqueous solution using novel, synthetic amino-hypophosphite polyampholyte resin (AHP) in a batch adsorption system. The removal of Ni(ii) ions was determined as a function of pH (2.0–8.0), initial concentration of Ni(ii) ions (2.0–20.0 mM), resin dosage (1.0–10.0 g dm(−3)), contact time (0.04–24 h), and temperature (298–318 K). Moreover, continuous fixed-bed column sorption was also studied using model solutions and actual wastewater from the galvanising plant. The batch sorption experimental data showed that the maximum pH for efficient Ni(ii) ion removal was about 5.0. An equilibrium was reached after about 24 hours. The kinetics results were fitted using pseudo-first-order (PFO), pseudo-second-order (PSO), liquid film (LFD), and intraparticle diffusion (IPD) models. Freundlich and Langmuir isotherm models were applied for sorption equilibrium data. The maximum sorption capacity was obtained from the Langmuir equation to be 2.39, 2.52, and 2.62 mmol g(−1) at 298, 308, and 318 K, respectively. The thermodynamic parameters for the sorption of Ni(ii) ions on AHP imply the endothermic and spontaneous character of the process. The experimental results demonstrated that amino-hypophosphite polyampholyte resin could be used to effectively remove Ni(ii) ions from model solutions and real wastewater. The Royal Society of Chemistry 2023-09-11 /pmc/articles/PMC10493852/ /pubmed/37701283 http://dx.doi.org/10.1039/d3ra04543a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ulatowska, Justyna
Stala, Łukasz
Trzęsowska, Natasza
Polowczyk, Izabela
Application of amino-hypophosphite polyampholyte for purification of wastewater containing Ni(ii) ions
title Application of amino-hypophosphite polyampholyte for purification of wastewater containing Ni(ii) ions
title_full Application of amino-hypophosphite polyampholyte for purification of wastewater containing Ni(ii) ions
title_fullStr Application of amino-hypophosphite polyampholyte for purification of wastewater containing Ni(ii) ions
title_full_unstemmed Application of amino-hypophosphite polyampholyte for purification of wastewater containing Ni(ii) ions
title_short Application of amino-hypophosphite polyampholyte for purification of wastewater containing Ni(ii) ions
title_sort application of amino-hypophosphite polyampholyte for purification of wastewater containing ni(ii) ions
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10493852/
https://www.ncbi.nlm.nih.gov/pubmed/37701283
http://dx.doi.org/10.1039/d3ra04543a
work_keys_str_mv AT ulatowskajustyna applicationofaminohypophosphitepolyampholyteforpurificationofwastewatercontainingniiiions
AT stalałukasz applicationofaminohypophosphitepolyampholyteforpurificationofwastewatercontainingniiiions
AT trzesowskanatasza applicationofaminohypophosphitepolyampholyteforpurificationofwastewatercontainingniiiions
AT polowczykizabela applicationofaminohypophosphitepolyampholyteforpurificationofwastewatercontainingniiiions