<p>The green synthesis of iron nanoparticles (FeNPs) using plant extracts has attracted considerable attention because of their potential to effectively decolorize dye-containing wastewater. Nevertheless, the underlying mechanism remains a topic of debate, mainly due to the complex composition of the extracts. In this study, we introduced a novel and well-defined model system by employing a single polyphenol, ellagic acid (EA), as both reducing and capping agent to synthesize iron particles (Fe-EA). This strategic approach not only circumvents the compositional variability of conventional plant extracts but also enables a fundamental molecular-level understanding of the adsorption process. The resulting Fe-EA particles exhibited eminent malachite green (MG) removal performance, achieving high removal efficiency (over 86.4% within 10&#xa0;min), which was comparable to that of FeNPs derived from complex pomegranate extracts. Comprehensive characterizations (SEM, EDS, XRD, FTIR, XPS) confirmed that the particles consist of a Fe(II, III)-EA complex self-assembled into unique hollow spherical structures. Adsorption isotherm data were best described by the Langmuir model, indicating homogeneous monolayer adsorption and a maximum calculated capacity of 4149.4&#xa0;mg (g Fe)<sup>−1</sup>. Thermodynamic parameters revealed that the adsorption process was spontaneous and endothermic. Combined with LC-MS analysis and kinetic studies, the primary removal mechanism was identified as a chemisorption process, governed by the synergy of strong electrostatic attraction and hydrogen bonding. This work provides molecular-level insights that shift the design of green-synthesized iron particles from empirical testing to rational engineering.</p>

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Insight into the performance and mechanism of Iron(II, III)-polyphenol particles on the adsorption of malachite green cationic dye

  • Yu Hu,
  • Xin Han,
  • Nan Zhang,
  • Li Guo,
  • Lingfan Zhang

摘要

The green synthesis of iron nanoparticles (FeNPs) using plant extracts has attracted considerable attention because of their potential to effectively decolorize dye-containing wastewater. Nevertheless, the underlying mechanism remains a topic of debate, mainly due to the complex composition of the extracts. In this study, we introduced a novel and well-defined model system by employing a single polyphenol, ellagic acid (EA), as both reducing and capping agent to synthesize iron particles (Fe-EA). This strategic approach not only circumvents the compositional variability of conventional plant extracts but also enables a fundamental molecular-level understanding of the adsorption process. The resulting Fe-EA particles exhibited eminent malachite green (MG) removal performance, achieving high removal efficiency (over 86.4% within 10 min), which was comparable to that of FeNPs derived from complex pomegranate extracts. Comprehensive characterizations (SEM, EDS, XRD, FTIR, XPS) confirmed that the particles consist of a Fe(II, III)-EA complex self-assembled into unique hollow spherical structures. Adsorption isotherm data were best described by the Langmuir model, indicating homogeneous monolayer adsorption and a maximum calculated capacity of 4149.4 mg (g Fe)−1. Thermodynamic parameters revealed that the adsorption process was spontaneous and endothermic. Combined with LC-MS analysis and kinetic studies, the primary removal mechanism was identified as a chemisorption process, governed by the synergy of strong electrostatic attraction and hydrogen bonding. This work provides molecular-level insights that shift the design of green-synthesized iron particles from empirical testing to rational engineering.