Due to robustness, easy large-scale preparation and low cost, nanomaterials with enzyme-like characteristics
(defined as ‘nanozymes’) are attracting increasing interest for various applications. However, most of currently
developed nanozymes show much lower activity in comparison with natural enzymes, and the deficiency greatly
hinders their use in sensing and biomedicine. Single-atom catalysts (SACs) offer the unique feature of maximum
atomic utilization, providing a potential pathway to improve the catalytic activity of nanozymes. Herein, we
propose a Fe-N-C single-atom nanozyme (SAN) that exhibits unprecedented peroxidase-mimicking activity. The
SAN consists of atomically dispersed Fe-Nx moieties hosted by metal–organic frameworks (MOF) derived porous
carbon. Thanks to the 100% single-atom active Fe dispersion and the large surface area of the porous support,
the Fe-N-C SAN provided a specific activity of 57.76 U mg-1, which was almost at the same level as natural
horseradish peroxidase (HRP). Attractively, the SAN presented much better storage stability and robustness
against harsh environments. As a proof-of-concept application, highly sensitive biosensing of butyrylcholinesterase
(BChE) activity using the Fe-N-C SAN as a substitute for natural HRP was further verified.
Revised: March 2, 2020 |
Published: October 1, 2019
Citation
Niu X., Q. Shi, W. Zhu, D. Liu, H. Tian, S. Fu, and N. Cheng, et al. 2019.Unprecedented peroxidase-mimicking activity of single-atom nanozyme with atomically dispersed Fe–Nx moieties hosted by MOF derived porous carbon.Biosensors and Bioelectronics 142.PNNL-SA-145442.doi:10.1016/j.bios.2019.111495