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Preparation of Agarose Fluorescent Hydrogel Inserted by POSS and Its Application for the Identification and Adsorption of Fe(3+)

After entering in water, Fe(3+) is enriched in the human body and along the food chain, causing chronic poisoning and irreversible harm to human health. In order to solve this problem, we synthesized citric acid POSS (CAP) from aminopropyl POSS (OAP) and citric acid. Then, we synthesized fluorescent...

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Autores principales: Fu, Zhengquan, Li, Ming, Li, Yuanhang, Zhang, Zhiyuan, Wang, Di, Wang, Chengyu, Li, Jian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8544435/
https://www.ncbi.nlm.nih.gov/pubmed/34698197
http://dx.doi.org/10.3390/gels7040173
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author Fu, Zhengquan
Li, Ming
Li, Yuanhang
Zhang, Zhiyuan
Wang, Di
Wang, Chengyu
Li, Jian
author_facet Fu, Zhengquan
Li, Ming
Li, Yuanhang
Zhang, Zhiyuan
Wang, Di
Wang, Chengyu
Li, Jian
author_sort Fu, Zhengquan
collection PubMed
description After entering in water, Fe(3+) is enriched in the human body and along the food chain, causing chronic poisoning and irreversible harm to human health. In order to solve this problem, we synthesized citric acid POSS (CAP) from aminopropyl POSS (OAP) and citric acid. Then, we synthesized fluorescent hydrogels (CAP-agarose hydrogel, CAHG) with CAP and agarose. The luminescence mechanism of CAP was investigated by theoretical calculation. CAP plays a dual role in composite hydrogels: one is to give the gels good fluorescence properties and detect Fe(3+); the second is that the surface of CAP has a large content of carbonyl and amide groups, so it can coordinate with Fe(3+) to enhance the adsorption properties of hydrogels. The experimental results show that the lowest Fe(3+) concentration that CAHG can detect is 5 μmol/L, and the adsorption capacity for Fe(3+) is about 26.75 mg/g. In a certain range, the fluorescence intensity of CAHG had an exponential relation with Fe(3+) concentration, which is expected to be applied to fluorescence sensors. Even at a lower concentration, CAHG can effectively remove Fe(3+) from the solution. The prepared fluorescent hydrogel has great potential in the field of fluorescent probes, fluorescent sensors, and ion adsorption. Besides, CAHG can be used as photothermal material after adsorbing Fe(3+), allowing for material recycling and reducing material waste.
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spelling pubmed-85444352021-10-26 Preparation of Agarose Fluorescent Hydrogel Inserted by POSS and Its Application for the Identification and Adsorption of Fe(3+) Fu, Zhengquan Li, Ming Li, Yuanhang Zhang, Zhiyuan Wang, Di Wang, Chengyu Li, Jian Gels Article After entering in water, Fe(3+) is enriched in the human body and along the food chain, causing chronic poisoning and irreversible harm to human health. In order to solve this problem, we synthesized citric acid POSS (CAP) from aminopropyl POSS (OAP) and citric acid. Then, we synthesized fluorescent hydrogels (CAP-agarose hydrogel, CAHG) with CAP and agarose. The luminescence mechanism of CAP was investigated by theoretical calculation. CAP plays a dual role in composite hydrogels: one is to give the gels good fluorescence properties and detect Fe(3+); the second is that the surface of CAP has a large content of carbonyl and amide groups, so it can coordinate with Fe(3+) to enhance the adsorption properties of hydrogels. The experimental results show that the lowest Fe(3+) concentration that CAHG can detect is 5 μmol/L, and the adsorption capacity for Fe(3+) is about 26.75 mg/g. In a certain range, the fluorescence intensity of CAHG had an exponential relation with Fe(3+) concentration, which is expected to be applied to fluorescence sensors. Even at a lower concentration, CAHG can effectively remove Fe(3+) from the solution. The prepared fluorescent hydrogel has great potential in the field of fluorescent probes, fluorescent sensors, and ion adsorption. Besides, CAHG can be used as photothermal material after adsorbing Fe(3+), allowing for material recycling and reducing material waste. MDPI 2021-10-18 /pmc/articles/PMC8544435/ /pubmed/34698197 http://dx.doi.org/10.3390/gels7040173 Text en © 2021 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
Fu, Zhengquan
Li, Ming
Li, Yuanhang
Zhang, Zhiyuan
Wang, Di
Wang, Chengyu
Li, Jian
Preparation of Agarose Fluorescent Hydrogel Inserted by POSS and Its Application for the Identification and Adsorption of Fe(3+)
title Preparation of Agarose Fluorescent Hydrogel Inserted by POSS and Its Application for the Identification and Adsorption of Fe(3+)
title_full Preparation of Agarose Fluorescent Hydrogel Inserted by POSS and Its Application for the Identification and Adsorption of Fe(3+)
title_fullStr Preparation of Agarose Fluorescent Hydrogel Inserted by POSS and Its Application for the Identification and Adsorption of Fe(3+)
title_full_unstemmed Preparation of Agarose Fluorescent Hydrogel Inserted by POSS and Its Application for the Identification and Adsorption of Fe(3+)
title_short Preparation of Agarose Fluorescent Hydrogel Inserted by POSS and Its Application for the Identification and Adsorption of Fe(3+)
title_sort preparation of agarose fluorescent hydrogel inserted by poss and its application for the identification and adsorption of fe(3+)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8544435/
https://www.ncbi.nlm.nih.gov/pubmed/34698197
http://dx.doi.org/10.3390/gels7040173
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