Heptazine‐Phloroglucinol Based Hydrophilic Hypercrosslinked Polymers for the Ultrafast Removal of Aromatic Organic Micropollutants

Comprehensive Summary The rapid removal of persistent aromatic organic micropollutants (OMPs) from water requires adsorbents with high affinity and excellent dispersibility. To overcome the inherent hydrophobicity and limited functionality of conventional hypercrosslinked polymers (HCPs), we designed a novel C 3 ‐symmetric heptazine monomer (TPH) featuring multiple phenolic hydroxyl groups and an extended π‐conjugated system. Two HCP‐TPHs, HCP‐TPH‐1 and HCP‐TPH‐2, were synthesized directly from this hydrophilic TPH monomer, resulting in materials with high surface area, abundant functional groups, and intrinsic hydrophilicity. These structural characteristics enabled ultrafast adsorption of typical aromatic OMPs. For instance, in the adsorption of rhodamine B by HCP‐TPH‐1, the pseudo‐second‐order rate constant reached 61.453 g·mg –1 ·min –1 , with a maximum adsorption capacity of 2658 mg·g –1 —both record‐high values among all reported adsorbents to date. This study demonstrates a powerful monomer‐level design strategy to create advanced HCPs for highly efficient water purification.

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Publication Details

Journal
Chinese Journal of Chemistry
Published
2026-09-18
DOI
https://doi.org/10.1002/cjoc.70754
Primary Topic
Covalent Organic Framework Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Heptazine‐Phloroglucinol Based Hydrophilic Hypercrosslinked Polymers for the Ultrafast Removal of Aromatic Organic Micropollutants

Hui Lin, Y. Wu, Ke Chen, Wei Zhang et al.
Chinese Journal of Chemistry
Covalent Organic Framework Applications
article

Heptazine‐Phloroglucinol Based Hydrophilic Hypercrosslinked Polymers for the Ultrafast Removal of Aromatic Organic Micropollutants

Hui Lin, Y. Wu, Ke Chen, Wei Zhang, Xiaomei Cao, Yong Zhang, Dongliang Lu
article en

Abstract

Comprehensive Summary The rapid removal of persistent aromatic organic micropollutants (OMPs) from water requires adsorbents with high affinity and excellent dispersibility. To overcome the inherent hydrophobicity and limited functionality of conventional hypercrosslinked polymers (HCPs), we designed a novel C 3 ‐symmetric heptazine monomer (TPH) featuring multiple phenolic hydroxyl groups and an extended π‐conjugated system. Two HCP‐TPHs, HCP‐TPH‐1 and HCP‐TPH‐2, were synthesized directly from this hydrophilic TPH monomer, resulting in materials with high surface area, abundant functional groups, and intrinsic hydrophilicity. These structural characteristics enabled ultrafast adsorption of typical aromatic OMPs. For instance, in the adsorption of rhodamine B by HCP‐TPH‐1, the pseudo‐second‐order rate constant reached 61.453 g·mg –1 ·min –1 , with a maximum adsorption capacity of 2658 mg·g –1 —both record‐high values among all reported adsorbents to date. This study demonstrates a powerful monomer‐level design strategy to create advanced HCPs for highly efficient water purification.

Chinese Journal of Chemistry
Gannan Normal University (CN)
National Natural Science Foundation of China, Natural Science Foundation of Jiangxi Province
Clean water and sanitation
Openalex Percentile: Top 24%
Covalent Organic Framework Applications
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Heptazine‐Phloroglucinol Based Hydrophilic Hypercrosslinked Polymers for the Ultrafast Removal of Aromatic Organic Micropollutants — Hui Lin, Y. Wu, et al. · Chinese Journal of Chemistry (2026) | TGRS Research Map | TGRS