Related Experiment Video
Updated: May 31, 2026

Preparation and Use of Photocatalytically Active Segmented Ag|ZnO and Coaxial TiO2-Ag Nanowires Made by Templated Electrodeposition
Published on: May 2, 2014
Enhanced Photoelectrochemical Water Splitting via Sonication-Assisted Liquid-Phase Exfoliated 2D MoS2 on 1D TiO2
Chathuranga N Wijerathna1, Kaveendra Yasas Wickramathilaka1, Elsa Njeri1
1Department of Chemistry, University of Connecticut, 55 N Eagleville Rd, Storrs Center, Connecticut06269, United States.
Abstract:
Developing and designing two-dimensional/one-dimensional (2D/1D) nanoheterostructures is promising for enhancing photoelectrochemical (PEC) water splitting efficiency. Herein, a 2D MoS2@1D TNTA heterostructure photoanode was designed and fabricated. Few-layer 2D MoS2 nanosheets were successfully exfoliated using a simple liquid-phase chemical exfoliation technique in the presence and the absence of hexamethylenetetramine (HMTA) and subsequently electrochemically deposited onto self-assembled TiO2 nanotube arrays (TNTA) grown on Ti metal substrates. The photoanode prepared using HMTA-assisted exfoliated MoS2 is denoted as HMTA-MoS2@TNTA, while the photoanode prepared without HMTA is denoted as MoS2@TNTA. VB-XPS and electrochemical studies confirm that the incorporation of few-layer MoS2 nanosheets enhances the photogenerated charge carrier separation while also effectively suppressing charge recombination through a favorable band alignment at the interface. Simultaneously, the one-dimensional TiO2 nanotube array architecture decouples light absorption and charge transport owing to its unique 1D geometry, thereby further improving the PEC performance. The optimized HMTA-MoS2/TNTA photoanode exhibited a photocurrent density of 1.80 mA cm-2 vs RHE, which is about 1.4 times higher than that of MoS2@TNTA and about 5 times higher than that of the pristine TNTA photoanode. This superior PEC performance of HMTA-MoS2@TNTA is attributed to improved charge separation arising from the intimate integration of monolayer/few-layer MoS2 nanosheets (1-4 layers) with the TiO2 nanotubes, highlighting the potential of this 2D/1D device heterostructure for advanced solar energy conversion applications.

