A sulfur-containing fluorescent hybrid porous polymer for selective detection and adsorption of Hg ions
Developing dual-function materials that can simultaneously detect and remove mercury ions (Hg 2+ ) is significant because water contamination caused by Hg 2+ has greatly threatened environmental and human health. However, it is difficult to achieve efficient dual-function. Herein, we report a highly...
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Veröffentlicht in: | Polymer chemistry 2022-04, Vol.13 (16), p.232-233 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Developing dual-function materials that can simultaneously detect and remove mercury ions (Hg
2+
) is significant because water contamination caused by Hg
2+
has greatly threatened environmental and human health. However, it is difficult to achieve efficient dual-function. Herein, we report a highly efficient and selective dual-function material, that is, a sulfur-containing fluorescent hybrid porous polymer (HPP-SH), for the detection and adsorption of Hg
2+
. HPP-SH was simply prepared by the Heck reaction of octavinylsilsesquioxane and 4,4′-dibromobiphenyl and subsequent post-functionalization by a thiol-ene reaction of 1,2-ethanedithiol with retained vinyl groups in the framework. HPP-SH suspension in water can selectively and efficiently detect Hg
2+
ions with a low limit of detection of 4.48 ppb by a fluorescence "turn-off" mode, and capture Hg
2+
ions with a maximum adsorption capacity of 900.9 mg g
−1
and without the interference of other metal ions. The adsorption process conforms to the pseudo-second-order kinetic and Langmuir model. Moreover, the material can be easily recycled for repeated adsorption of Hg
2+
ions. The excellent dual-function performance is better than those of most of the previous Hg
2+
sensors or adsorbents. These results reveal that the present material can be utilized as a promising candidate for Hg
2+
detection and removal from aqueous solutions. More efficient Hg
2+
sensors and/or adsorbents can be conceived and prepared by this simple strategy.
A dual-function material, that is, a sulfur-containing fluorescent hybrid porous polymer, has been simply prepared and utilized to simultaneously detect and capture Hg
2+
with high efficiency and selectivity. |
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ISSN: | 1759-9954 1759-9962 |
DOI: | 10.1039/d2py00077f |