Identification of the Charge Transfer Channel in Cobalt Encapsulated Hollow Nitrogen-Doped Carbon Matrix@CdS Heterostructure for Photocatalytic Hydrogen Evolution.
Xuli LiShaojia SongYangqin GaoLei GeWeiyu SongTian Yi MaJian LiuPublished in: Small (Weinheim an der Bergstrasse, Germany) (2021)
Water splitting to H2 by photocatalysis remains an effective strategy to alleviate the energy crisis. Unfortunately, single-component photocatalyst still suffers from sluggish reaction kinetics. In this work, a noble-metal free photocatalytic system of nitrogen-doped carbon@Co embedded in carbon nanotubes (NC@Co-NCT)/cadmium sulfide (CdS) is fabricated by coupling CdS nanorods with the metal-organic framework-derived Co encapsulated nitrogen-doped carbon (NC) material. The optimal photocatalytic activity of NC@Co-NCT/CdS is determined to be 3.8 mmol h-1 g-1 , which is ≈5.8 times of CdS. By combining the experimental evidences and density functional theory calculations, a novel photoelectron transfer channel in the heterojunction interfaces is revealed, expediting the migration and separation of photo-induced charge carriers of CdS. Moreover, the presence of Co nanoclusters can act as the active sites, boosting the H2 evolution reaction. This study can present a new avenue to design advanced photocatalysts with high-efficiency electrons and holes separation.
Keyphrases
- visible light
- density functional theory
- metal organic framework
- carbon nanotubes
- high efficiency
- molecular dynamics
- quantum dots
- electron transfer
- public health
- reduced graphene oxide
- liquid chromatography
- single cell
- heavy metals
- sensitive detection
- gold nanoparticles
- high resolution
- molecular dynamics simulations
- mass spectrometry
- high glucose
- room temperature
- stress induced