Related Experiment Video
Updated: Jan 12, 2026

Efficient Synthesis of Polyfunctionalized Benzenes in Water via Persulfate-promoted Benzannulation of α,β-Unsaturated Compounds and Alkynes
Published on: December 16, 2019
Benzene Ring-Driven Metal Hydrolysis and Floc Formation in Coagulation: Mechanistic Insights from Organic Structural
Jian Zhu1,2, Nigel Graham3, Guibai Li4
1Key Laboratory of Environmental Aquatic Chemistry, State Key Laboratory of Regional Environment and Sustainability, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, People's Republic of China.
Abstract:
The chemical structure of natural organic matter (NOM) is known to influence its removal during coagulation, yet the underlying molecular-scale mechanisms remain elusive. This has limited the rational design of advanced water treatment processes. Here, we reveal a previously overlooked mechanism, the cation-π interaction, as a key driver for the efficient removal of aromatic organic matter. Using model compounds with and without a benzene ring (benzoate/phthalate vs acetate), we demonstrate that the benzene ring is not merely a passive scaffold but an active participant in coagulation. It acts as an initial anchor, attracting trivalent metal ions via strong cation-π interactions. This initial attraction then facilitates a more stable, secondary binding as functional groups (e.g., -COOH and -OH) on the ring chelate with the metal ions, ultimately promoting floc growth. This dual-binding mechanism, supported by spectroscopic and microscopic evidence, explains how the presence of a benzene ring participates in metal ion hydrolysis and floc formation, leading to significantly improved coagulation performance. This finding highlights the critical role of aromatic structures in the coagulation process and provides a new theoretical foundation for optimizing coagulants to achieve the selective and efficient removal of specific aromatic pollutants.
Related Concept Videos
Structure of Benzene: Kekulé Model
He proposed that benzene has a cyclic structure of six carbon atoms attached to one hydrogen atom each, with three alternating pi bonds.
Reduction of Benzene to Cyclohexane: Catalytic Hydrogenation
Structure of Benzene: Molecular Orbital Model
Benzene to 1,4-Cyclohexadiene: Birch Reduction Mechanism
Electrophilic Aromatic Substitution: Sulfonation of Benzene
Benzene to Phenol via Cumene: Hock Process

