4.6 Article

A facile route for constructing Cu-N-C peroxidase mimics

Journal

JOURNAL OF MATERIALS CHEMISTRY B
Volume 8, Issue 37, Pages 8599-8606

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0tb01494j

Keywords

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Funding

  1. National Natural Science Foundation of China [21775023]
  2. Talent Training Project of Fujian Provincial Health and Family Planning Commission [2018-CX-39]
  3. National Science Foundation of Fujian Province [2016J06019]
  4. Joint Funds for the Innovation of Science and Technology of Fujian Province [2017Y9124]
  5. Program for Young Top-Notch Innovative Talents of Fujian Province of China

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Nanozymes have emerged as enzyme-mimicking nanomaterials to overcome the low stability and high cost of some natural enzymes. The design and fabrication of nanozymes with superior performance to natural enzymes are in urgent demand. Single-atom catalysts offer the unique characteristics of maximum atomic utilization, and are an excellent candidate for nanozymes. However, most of the reported synthesis methods for single-atom catalysts require the preparation of supports for single-atom catalysts in advance, which requires multiple steps and calcination in a high temperature atmosphere. Herein, Cu-N-C single-atom nanozymes (Cu-N-C SAzymes) were successfully designedviaa one-pot solvothermal method. Cu-N-C SAzymes exhibited excellent peroxidase-mimicking activity that is superior to some other related nanoparticles. The mechanism study revealed that H(2)O(2)was catalyzed by Cu-N-C SAzymes to generate reactive oxygen species. Furthermore, based on the excellent peroxidase-mimicking activity of the Cu-N-C SAzymes, a simple and sensitive detection method for H(2)O(2)and glucose has been developed.

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