TY - JOUR
T1 - TiO2Nanoflowers Decorated with FeO xNanocluster and Single Atoms by Atomic Layer Deposition for Peroxidase-Mimicking Nanozymes
AU - Qin, Fengmin
AU - Zhang, Jiankang
AU - Zhou, Zhan
AU - Xu, Hao
AU - Cui, Lin
AU - Lv, Zhengxing
AU - Qin, Yong
N1 - Publisher Copyright:
© 2022 American Chemical Society.
PY - 2022/9/23
Y1 - 2022/9/23
N2 - Nanozymes have great potential to replace natural enzymes due to their multiple enzyme-mimicking properties in practical applications, and the development of high-efficiency nanozymes is of great necessity. Herein, FeOx/TiO2 nanozymes with confined structures were synthesized by atomic layer deposition (ALD), among which the 70FeOx/TiO2 nanozymes with highly dispersed Fe single atoms and FeOx nanoclusters confined in the pores of TiO2 nanoflower supports exhibit optimized peroxidase activity. Furthermore, the ultrathin modification strategy of ALD (1-cycle TiO2) followed by reduction treatment was conducted to achieve the 1TiO2-70FeOx/TiO2-H nanozymes, whose enzyme-like activity is almost 2 times higher than that of 70FeOx/TiO2 counterparts. Investigation of the catalytic mechanism shows that atomic-level modification of TiO2 modifies the FeOx electron states, contributing to the stronger capability to generate hydroxyl radical, which results in remarkably enhanced peroxidase activity. The present work may provide new insights into the rational design of high-efficiency nanozymes at an atomic level.
AB - Nanozymes have great potential to replace natural enzymes due to their multiple enzyme-mimicking properties in practical applications, and the development of high-efficiency nanozymes is of great necessity. Herein, FeOx/TiO2 nanozymes with confined structures were synthesized by atomic layer deposition (ALD), among which the 70FeOx/TiO2 nanozymes with highly dispersed Fe single atoms and FeOx nanoclusters confined in the pores of TiO2 nanoflower supports exhibit optimized peroxidase activity. Furthermore, the ultrathin modification strategy of ALD (1-cycle TiO2) followed by reduction treatment was conducted to achieve the 1TiO2-70FeOx/TiO2-H nanozymes, whose enzyme-like activity is almost 2 times higher than that of 70FeOx/TiO2 counterparts. Investigation of the catalytic mechanism shows that atomic-level modification of TiO2 modifies the FeOx electron states, contributing to the stronger capability to generate hydroxyl radical, which results in remarkably enhanced peroxidase activity. The present work may provide new insights into the rational design of high-efficiency nanozymes at an atomic level.
KW - atomic layer deposition
KW - nanoclusters and single atoms
KW - nanozymes
KW - peroxidase activity
KW - ultrathin modification
UR - http://www.scopus.com/inward/record.url?scp=85138046345&partnerID=8YFLogxK
U2 - 10.1021/acsanm.2c02875
DO - 10.1021/acsanm.2c02875
M3 - 文章
AN - SCOPUS:85138046345
SN - 2574-0970
VL - 5
SP - 13090
EP - 13099
JO - ACS Applied Nano Materials
JF - ACS Applied Nano Materials
IS - 9
ER -