4.3 Review

Charge Steering in Heterojunction Photocatalysis: General Principles, Design, Construction, and Challenges

Journal

SMALL SCIENCE
Volume 3, Issue 3, Pages -

Publisher

WILEY
DOI: 10.1002/smsc.202200041

Keywords

graphene; heterojunctions; photocatalysis; Schottky; ohmic junctions; semiconductors

Ask authors/readers for more resources

Studying charge kinetics is crucial for optimizing quantum efficiency in photocatalysts. The design of photocatalysts has become more complex, requiring a detailed understanding of charge dynamics in heterojunctions. This article focuses on the steering of charge kinetics by modulating charge energy states in semiconductor-metal-interface-based heterogeneous photocatalysts, and presents general principles for their design and construction. Recent advances in interfacing semiconductors with graphene, carbon quantum dots, and graphitic carbon nitride are discussed, along with their limitations and potential future developments.
Steering charge kinetics is a key to optimizing quantum efficiency. Advancing the design of photocatalysts (ranging from single semiconductor to multicomponent semiconductor junctions) that promise improved photocatalytic performance for converting solar to chemical energy, entails mastery of increasingly more complicated processes. Indeed, charge kinetics become more complex as both charge generation and charge consumption may occur simultaneously on different components, generally with charges being transferred from one component to another. Capturing detailed charge dynamics information in each heterojunction would provide numerous significant benefits for applications and has been needed for a long time. Here, the steering of charge kinetics by modulating charge energy states in the design of semiconductor-metal-interface-based heterogeneous photocatalysts is focused. These phenomena can be delineated by separating heterojunctions into classes exhibiting either Schottky/ohmic or plasmonic effects. General principles for the design and construction of heterojunction photocatalysts, including recent advances in the interfacing of semiconductors with graphene, carbon quantum dots, and graphitic carbon nitride are presented. Their limitations and possible future outlook are brought forward to further instruct the field in designing highly efficient photocatalysts.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.3
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available