<p>Herein, we present a proof-of-concept investigation into the assessment of the laccase-like activity of covalently bonded carbon environments connected to Fe-N<sub>4</sub> sites, using the closed π conjugated phthalocyanine-based intrinsic covalent organic polymers (COP) with well-designed structures. Based on the theoretical prediction and experimental implementation, the impact of the covalent-bonded carbon matrix on the laccase-like activity of COP-X (X represents the degree of conjugation) was systematically investigated. Further calculation results by density functional theory showed that the strongest laccase-like catalytic activity of COP-2 may be due to the facile desorption of catalytic intermediates, and the laccase-like catalytic mechanism of COP-2 nanozymes was also deeply understood. As anticipated, the utilization of COP-2 nanozymes with laccase-like activity enabled the achievement of excellent sensitivity for monitoring epinephrine in human serum. In addition, the COP-2 nanozymes also facilitate the detection and degradation of phenolic pollutants present in the environment. This finding presents a novel perspective for the rational design of high-performance laccase-like iron based nanozymes, and also lays the foundation for clarifying the origin of the laccase-like activity of nanozymes.</p> Graphical Abstract <p></p>

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Unraveling the modulation of covalently bonded carbon matrix on Fe-N4 active sites for enhanced laccase-like activity: toward advanced detection and degradation of phenolic pollutants

  • Guo-Qi Zhang,
  • Xia Long,
  • Yu-Han Shi,
  • Wei Wu,
  • Xin-Yue Zhou,
  • Wen-Cai Jiang,
  • Tian-Qi Li,
  • Wen-jing Xiang,
  • Wei-Ping Liu,
  • Yan Zhao

摘要

Herein, we present a proof-of-concept investigation into the assessment of the laccase-like activity of covalently bonded carbon environments connected to Fe-N4 sites, using the closed π conjugated phthalocyanine-based intrinsic covalent organic polymers (COP) with well-designed structures. Based on the theoretical prediction and experimental implementation, the impact of the covalent-bonded carbon matrix on the laccase-like activity of COP-X (X represents the degree of conjugation) was systematically investigated. Further calculation results by density functional theory showed that the strongest laccase-like catalytic activity of COP-2 may be due to the facile desorption of catalytic intermediates, and the laccase-like catalytic mechanism of COP-2 nanozymes was also deeply understood. As anticipated, the utilization of COP-2 nanozymes with laccase-like activity enabled the achievement of excellent sensitivity for monitoring epinephrine in human serum. In addition, the COP-2 nanozymes also facilitate the detection and degradation of phenolic pollutants present in the environment. This finding presents a novel perspective for the rational design of high-performance laccase-like iron based nanozymes, and also lays the foundation for clarifying the origin of the laccase-like activity of nanozymes.

Graphical Abstract