In:
Advanced Materials, Wiley, Vol. 35, No. 18 ( 2023-05)
Abstract:
The catalytic activity has been investigated in 2D materials, and the unique structural and electronic properties contribute to their success in conventional heterogeneous catalysis. Heterojunction‐based piezocatalysis has attracted increasing attention due to the band‐structure engineering and the enhanced charge carrier separation by prominent piezoelectric effect. However, the piezocatalytic behavior of van der Waals (vdW) heterostructures is still unknown, and the finite active sites, catalyst poisoning, and poor conductivity are challenges for developing good piezocatalysts. Herein, a reduced graphene oxide (rGO)‐MoS 2 heterostructure is rationally designed to tackle these challenges. The heterostructure shows a record‐high piezocatalytic degradation rate of 1.40 × 10 2 L mol −1 s −1 , which is 7.86 times higher than MoS 2 nanosheets. Piezoresponse force microscope measurements and density functional theory calculation reveal that the coupling between semiconductive and piezoelectric properties in the vdW heterojunction is vital to break the metallic state screening effect at the MoS 2 edge for keeping the piezoelectric potential. The dynamic charges generated by MoS 2 and the fast charge transfer in rGO activate and maintain catalytically active sites for pollutant degradation with an ultra‐fast rate and good stability. The working mechanism opens new avenues for developing efficient catalysts significant to wastewater treatments and other applications.
Type of Medium:
Online Resource
ISSN:
0935-9648
,
1521-4095
DOI:
10.1002/adma.202212172
Language:
English
Publisher:
Wiley
Publication Date:
2023
detail.hit.zdb_id:
1474949-X