Intrinsic Ion Properties Regulate Metal Binding and Supramolecular Assembly in Humic Acid Systems

Abstract Humic acid (HA), a chemically active fraction of natural organic matter (NOM), regulates metal ion fate; however, the intrinsic ionic properties governing the transition from specific binding to supramolecular HA assembly remain poorly understood. Using purified HA, we combined adsorption experiments and molecular dynamics simulations for Ca2+, Cd2+, and Pb2+, NICA–Donnan parameter transfer for Mg2+, Cu2+, and Hg2+, and quantum calculations for all six cations to develop a descriptor-based six-metal framework. Metal electronegativity (χ) was associated with overall binding affinity, while its product with a period number (nshell) was strongly associated with site selectivity (R2 = 0.997). At low loading, metals preferentially occupied high-affinity, preorganized bidentate phenolic sites, whereas at higher loading, binding shifted toward carboxylate-mediated intermolecular coordination that facilitated HA association. Within the simulated HA model, metal ions acted as triggers and stabilizers rather than the dominant cohesive force. By reducing electrostatic repulsion, metals promoted the HA–HA approach, allowing weak intermolecular forces and aliphatic carboxylate coordination to stabilize supramolecular assembly. Across monovalent, divalent, and trivalent ion datasets, log-transformed critical coagulation concentration correlated with log (ionic charge2 × nshell) (R2 = 0.951). These findings provide testable hypotheses for metal mobility, contaminant sequestration, and carbon stability in HA-like or humic-rich NOM environments.

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Publication Details

Journal
Environmental Science & Technology
Published
2026-09-18
DOI
https://doi.org/10.1021/acs.est.6c05123
Primary Topic
Radioactive element chemistry and processing
Type
article
Field-Weighted Citation Impact
0.00

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article

Intrinsic Ion Properties Regulate Metal Binding and Supramolecular Assembly in Humic Acid Systems

Wanli Lian, Liping Weng, Jie Ma, Xunhua Zheng et al.
Environmental Science & Technology
Radioactive element chemistry and processing
article

Intrinsic Ion Properties Regulate Metal Binding and Supramolecular Assembly in Humic Acid Systems

Wanli Lian, Liping Weng, Jie Ma, Xunhua Zheng, Yi An, Jinghua Li, 邓颍轩, Lili Huo
article en

Abstract

Abstract Humic acid (HA), a chemically active fraction of natural organic matter (NOM), regulates metal ion fate; however, the intrinsic ionic properties governing the transition from specific binding to supramolecular HA assembly remain poorly understood. Using purified HA, we combined adsorption experiments and molecular dynamics simulations for Ca2+, Cd2+, and Pb2+, NICA–Donnan parameter transfer for Mg2+, Cu2+, and Hg2+, and quantum calculations for all six cations to develop a descriptor-based six-metal framework. Metal electronegativity (χ) was associated with overall binding affinity, while its product with a period number (nshell) was strongly associated with site selectivity (R2 = 0.997). At low loading, metals preferentially occupied high-affinity, preorganized bidentate phenolic sites, whereas at higher loading, binding shifted toward carboxylate-mediated intermolecular coordination that facilitated HA association. Within the simulated HA model, metal ions acted as triggers and stabilizers rather than the dominant cohesive force. By reducing electrostatic repulsion, metals promoted the HA–HA approach, allowing weak intermolecular forces and aliphatic carboxylate coordination to stabilize supramolecular assembly. Across monovalent, divalent, and trivalent ion datasets, log-transformed critical coagulation concentration correlated with log (ionic charge2 × nshell) (R2 = 0.951). These findings provide testable hypotheses for metal mobility, contaminant sequestration, and carbon stability in HA-like or humic-rich NOM environments.

Environmental Science & Technology
Institute of Environmental Protection (PL), Agro-Environmental Protection Institute (CN), Henan Normal University (CN), Wageningen University & Research (NL)
National Natural Science Foundation of China, China Postdoctoral Science Foundation, Natural Science Foundation of Tianjin City, Central Public-interest Scientific Institution Basal Research Fund for Chinese Academy of Tropical Agricultural Sciences, National Key Research and Development Program of China
Openalex Percentile: Top 25%
Radioactive element chemistry and processing
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