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Autori principali: Cao, Xuewen, Tian, Xuefeng, Zhang, Jun, Pan, Jinjiao, Huang, Rui, Du, Xinfeng, Yuan, Yihui, Wang, Ning, Wang, Hui
Natura: Artículo científico
Lingua:en
Pubblicazione: Advanced science (Weinheim, Baden-Wurttemberg, Germany) 2026
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Accesso online:https://pubmed.ncbi.nlm.nih.gov/41736669/
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author Cao, Xuewen
Tian, Xuefeng
Zhang, Jun
Pan, Jinjiao
Huang, Rui
Du, Xinfeng
Yuan, Yihui
Wang, Ning
Wang, Hui
author_facet Cao, Xuewen
Tian, Xuefeng
Zhang, Jun
Pan, Jinjiao
Huang, Rui
Du, Xinfeng
Yuan, Yihui
Wang, Ning
Wang, Hui
Cao, Xuewen
Tian, Xuefeng
Zhang, Jun
Pan, Jinjiao
Huang, Rui
Du, Xinfeng
Yuan, Yihui
Wang, Ning
Wang, Hui
collection PubMed - marine biology
contents Bioinspired Microreactor for Iodide Adsorption and Photooxidation Recovery. Cao, Xuewen Tian, Xuefeng Zhang, Jun Pan, Jinjiao Huang, Rui Du, Xinfeng Yuan, Yihui Wang, Ning Wang, Hui Iodides Oxidation-Reduction Adsorption Bioreactors Polymers Environmental Restoration and Remediation Iodine Iodine, an indispensable element for both industry and biology, suffers from scarcity in the earth's crust and inefficiency in conventional recovery technologies. Herein, inspired by the iodide oxidation pathway in thyroid follicular lumens, we designed a bioinspired micro-ionic-reactor based on a porous organic polymer (MIR-POP) that integrates iodide capture with in situ photooxidative conversion. The cationic framework of MIR-POP enables ultrafast electrostatic enrichment of iodide (I) ions within confined pores, where subsequent light irradiation drives their transformation into molecular iodine and polyiodide species. This bioinspired strategy outperforms adsorption-based materials and achieves a record uptake capacity of 853.06 mg g. Moreover, MIR-POP exhibits remarkable selectivity toward competing anions and delivers high recovery efficiencies of 93.8% in simulated mining wastewater and 85.8% in natural brine, highlighting its promising potential in complex environments. This bioinspired microreactor platform opens a new avenue for selective I ions recovery and in situ conversion, advancing both environmental remediation and strategic iodine resource recovery.
format Artículo científico
id pubmed_41736669
institution PubMed
language en
publishDate 2026
publisher Advanced science (Weinheim, Baden-Wurttemberg, Germany)
record_format pubmed
spellingShingle Bioinspired Microreactor for Iodide Adsorption and Photooxidation Recovery.
Cao, Xuewen
Tian, Xuefeng
Zhang, Jun
Pan, Jinjiao
Huang, Rui
Du, Xinfeng
Yuan, Yihui
Wang, Ning
Wang, Hui
Iodides
Oxidation-Reduction
Adsorption
Bioreactors
Polymers
Environmental Restoration and Remediation
Iodine
Bioinspired Microreactor for Iodide Adsorption and Photooxidation Recovery. Cao, Xuewen Tian, Xuefeng Zhang, Jun Pan, Jinjiao Huang, Rui Du, Xinfeng Yuan, Yihui Wang, Ning Wang, Hui Iodides Oxidation-Reduction Adsorption Bioreactors Polymers Environmental Restoration and Remediation Iodine Iodine, an indispensable element for both industry and biology, suffers from scarcity in the earth's crust and inefficiency in conventional recovery technologies. Herein, inspired by the iodide oxidation pathway in thyroid follicular lumens, we designed a bioinspired micro-ionic-reactor based on a porous organic polymer (MIR-POP) that integrates iodide capture with in situ photooxidative conversion. The cationic framework of MIR-POP enables ultrafast electrostatic enrichment of iodide (I) ions within confined pores, where subsequent light irradiation drives their transformation into molecular iodine and polyiodide species. This bioinspired strategy outperforms adsorption-based materials and achieves a record uptake capacity of 853.06 mg g. Moreover, MIR-POP exhibits remarkable selectivity toward competing anions and delivers high recovery efficiencies of 93.8% in simulated mining wastewater and 85.8% in natural brine, highlighting its promising potential in complex environments. This bioinspired microreactor platform opens a new avenue for selective I ions recovery and in situ conversion, advancing both environmental remediation and strategic iodine resource recovery.
title Bioinspired Microreactor for Iodide Adsorption and Photooxidation Recovery.
topic Iodides
Oxidation-Reduction
Adsorption
Bioreactors
Polymers
Environmental Restoration and Remediation
Iodine
url https://pubmed.ncbi.nlm.nih.gov/41736669/