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Synthesis of Porous Materials Using Magnesium Slag and Their Adsorption Performance for Lead Ions in Aqueous Solution

Magnesium slag-based porous materials (MSBPM) were successfully synthesized using alkali activation and foaming methods as an effective adsorbent for Pb(2+) in solution. The effects of foaming agent type, foaming agent dosage, alkali dosage, and water glass modulus on the properties of the MSBPM wer...

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Autores principales: Lu, Guangjun, Han, Jingang, Chen, Ying, Xue, Hongjiao, Qiu, Ruifang, Zhou, Xinxing, Ma, Zhibin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10672025/
https://www.ncbi.nlm.nih.gov/pubmed/38005013
http://dx.doi.org/10.3390/ma16227083
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author Lu, Guangjun
Han, Jingang
Chen, Ying
Xue, Hongjiao
Qiu, Ruifang
Zhou, Xinxing
Ma, Zhibin
author_facet Lu, Guangjun
Han, Jingang
Chen, Ying
Xue, Hongjiao
Qiu, Ruifang
Zhou, Xinxing
Ma, Zhibin
author_sort Lu, Guangjun
collection PubMed
description Magnesium slag-based porous materials (MSBPM) were successfully synthesized using alkali activation and foaming methods as an effective adsorbent for Pb(2+) in solution. The effects of foaming agent type, foaming agent dosage, alkali dosage, and water glass modulus on the properties of the MSBPM were studied, and the micromorphology and porosity of the MSBPM were observed using microscopy. The influence of pH value, initial concentration, and adsorbent dosage on the Pb(2+) adsorption was investigated. The results showed that a porous material (MSBPM-H(2)O(2)) with high compressive strength (8.46 MPa) and excellent Pb(2+) adsorption capacity (396.11 mg·g(−1)) was obtained under the optimal conditions: a H(2)O(2) dosage of 3%, an alkali dosage of 9%, a water glass modulus of 1.3, and a liquid–solid ratio of 0.5. Another porous material (MSBPM-Al) with a compressive strength of 5.27 MPa and the Pb(2+) adsorption capacity of 424.89 mg·g(−1) was obtained under the optimal conditions: an aluminum powder dosage of 1.5‰, an alkali dosage of 8%, a water glass modulus of 1.0, and a liquid–solid ratio of 0.5. When the pH of the aqueous solution is 6 and the initial Pb(2+) concentrations are 200~500 mg·L(−1), the MSBPM-H(2)O(2) and MSBPM-Al can remove more than 99% of Pb(2+) in the solution. The adsorption process of both materials followed the Langmuir isotherm model and pseudo-second-order kinetic model, indicating that the adsorption process was a single-molecule layer chemical adsorption.
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spelling pubmed-106720252023-11-08 Synthesis of Porous Materials Using Magnesium Slag and Their Adsorption Performance for Lead Ions in Aqueous Solution Lu, Guangjun Han, Jingang Chen, Ying Xue, Hongjiao Qiu, Ruifang Zhou, Xinxing Ma, Zhibin Materials (Basel) Article Magnesium slag-based porous materials (MSBPM) were successfully synthesized using alkali activation and foaming methods as an effective adsorbent for Pb(2+) in solution. The effects of foaming agent type, foaming agent dosage, alkali dosage, and water glass modulus on the properties of the MSBPM were studied, and the micromorphology and porosity of the MSBPM were observed using microscopy. The influence of pH value, initial concentration, and adsorbent dosage on the Pb(2+) adsorption was investigated. The results showed that a porous material (MSBPM-H(2)O(2)) with high compressive strength (8.46 MPa) and excellent Pb(2+) adsorption capacity (396.11 mg·g(−1)) was obtained under the optimal conditions: a H(2)O(2) dosage of 3%, an alkali dosage of 9%, a water glass modulus of 1.3, and a liquid–solid ratio of 0.5. Another porous material (MSBPM-Al) with a compressive strength of 5.27 MPa and the Pb(2+) adsorption capacity of 424.89 mg·g(−1) was obtained under the optimal conditions: an aluminum powder dosage of 1.5‰, an alkali dosage of 8%, a water glass modulus of 1.0, and a liquid–solid ratio of 0.5. When the pH of the aqueous solution is 6 and the initial Pb(2+) concentrations are 200~500 mg·L(−1), the MSBPM-H(2)O(2) and MSBPM-Al can remove more than 99% of Pb(2+) in the solution. The adsorption process of both materials followed the Langmuir isotherm model and pseudo-second-order kinetic model, indicating that the adsorption process was a single-molecule layer chemical adsorption. MDPI 2023-11-08 /pmc/articles/PMC10672025/ /pubmed/38005013 http://dx.doi.org/10.3390/ma16227083 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lu, Guangjun
Han, Jingang
Chen, Ying
Xue, Hongjiao
Qiu, Ruifang
Zhou, Xinxing
Ma, Zhibin
Synthesis of Porous Materials Using Magnesium Slag and Their Adsorption Performance for Lead Ions in Aqueous Solution
title Synthesis of Porous Materials Using Magnesium Slag and Their Adsorption Performance for Lead Ions in Aqueous Solution
title_full Synthesis of Porous Materials Using Magnesium Slag and Their Adsorption Performance for Lead Ions in Aqueous Solution
title_fullStr Synthesis of Porous Materials Using Magnesium Slag and Their Adsorption Performance for Lead Ions in Aqueous Solution
title_full_unstemmed Synthesis of Porous Materials Using Magnesium Slag and Their Adsorption Performance for Lead Ions in Aqueous Solution
title_short Synthesis of Porous Materials Using Magnesium Slag and Their Adsorption Performance for Lead Ions in Aqueous Solution
title_sort synthesis of porous materials using magnesium slag and their adsorption performance for lead ions in aqueous solution
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10672025/
https://www.ncbi.nlm.nih.gov/pubmed/38005013
http://dx.doi.org/10.3390/ma16227083
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