Gram-Scale Synthesis of a Laccase-Like Cu<sub>36</sub> Nanocluster with Enhanced Catalytic Activity and Stability.

Wang, Huan; Lin, Chun-Lian; Fan, En; Yin, He-Tao; Zhang, Sheng; Zhao, Yan; Li, Man-Bo; Wu, Zhikun · ACS Nano · 2025

basic_science · Level V

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Abstract

The widespread development of natural laccase in applications is limited by its sensitivity to environmental conditions and high production costs. We report an atomically precise Cu<sub>36</sub> nanoclusterzyme that is composed of a Cu<sub>22</sub> core stabilized by seven Cu<sub>2</sub><b>L</b> (<b>L</b>: 2-(2-(diphenylphosphaneyl)phenethyl)quinoline) staple units, three adamantanethiol (S-Adm) ligands, and one acetate ion (CH<sub>3</sub>COO<sup>-</sup>). This Cu<sub>36</sub> nanoclusterzyme demonstrates a laccase-like activity and exhibits dual functionality: (1) it catalyzes oxidation of phenolic pollutants with a maximum rate (4.12 μM·min<sup>-1</sup>), which is 2.8 times greater than that of natural laccase and (2) it enables selective detection of epinephrine through a colorimetric response, with a detection limit of 0.43 μg/mL. Importantly, the Cu<sub>36</sub> nanoclusterzyme is stable under extreme conditions, including extreme pH values, ionic strength, temperature, and storage time. It also preserves 80% catalytic efficiency after seven cycles and exhibits broad substrate specificity. These results demonstrate the application potential of the efficient Cu<sub>36</sub> nanoclusterzyme in the fields of analytical chemistry, environmental protection, and biotechnology.

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