The browser you are using is not supported by this website. All versions of Internet Explorer are no longer supported, either by us or Microsoft (read more here: https://www.microsoft.com/en-us/microsoft-365/windows/end-of-ie-support).

Please use a modern browser to fully experience our website, such as the newest versions of Edge, Chrome, Firefox or Safari etc.

 Tönu Pullerits. Portrait.

Tönu Pullerits

Professor

 Tönu Pullerits. Portrait.

Amorphization of MoS2 Cocatalysts on CdS Nanorods via Facet-Selective Deposition for Photocatalytic Hydrogen Evolution

Author

  • Fengying Zhang
  • Yujie Hong
  • Zehan Yao
  • Yi Li
  • Shenshen Zheng
  • Shan Yu
  • Arkady Yartsev
  • Kaibo Zheng
  • Tonu Pullerits
  • Ying Zhou

Summary, in English

The construction of heterojunctions between catalysts and cocatalysts is a widely recognized strategy to enhance catalytic activity. The precise placement of cocatalysts is widely understood to optimize charge transfer pathways and catalytic active sites. In this study, we demonstrate that site-selective decoration on an anisotropic catalyst, achieved by modulating solvent polarity and precursor reactivity during hydrothermal synthesis, can precisely control the structural properties of the cocatalysts. Using a benchmark CdS-MoS2 heterojunction system, where MoS2 cocatalysts are selectively grown on the tips and sides of CdS nanorods, we reveal that tip-decorated MoS2 adopts a quasi-amorphous structure with abundant defect states. This structural distortion stems from the greater lattice mismatch between MoS2 and the (002) facets of the CdS nanorod tips compared to their side (101) facets. These defects can serve as additional active sites, enhancing surface activation. Ultrafast photophysical studies further confirm that charge transfer between quasi-amorphous MoS2 and CdS (CdS/MoS2) is as efficient as that in its crystalline side-decorated counterparts (CdS@MoS2). Consequently, CdS/MoS2 achieves a photocatalytic efficiency of 6.7 mmol g-1 h-1, a significant 2-fold improvement over 2.9 mmol g-1 h-1 observed for CdS@MoS2. This work introduces an approach to optimizing photocatalytic performance through controlled cocatalyst growth in hybrid catalyst systems.

Department/s

  • Chemical Physics
  • NanoLund: Centre for Nanoscience
  • LTH Profile Area: Nanoscience and Semiconductor Technology
  • LU Profile Area: Light and Materials
  • LTH Profile Area: Photon Science and Technology

Publishing year

2025

Language

English

Pages

11338-11345

Publication/Series

ACS Applied Nano Materials

Volume

8

Issue

22

Document type

Journal article

Publisher

The American Chemical Society (ACS)

Topic

  • Materials Chemistry

Keywords

  • carrier dynamics
  • cocatalysts
  • growth modulation
  • hydrogen evolution
  • quasi-amorphous structure

Status

Published

ISBN/ISSN/Other

  • ISSN: 2574-0970