Rational approach for expanding functionality of wurtzite rectangle nano‐sheets based photoanode for improved photoelectrochemical water‐splitting performance

Author:

Rashid Khan Humaira123ORCID,Dawood Asadullah4,Akhtar Javed3,Khan Azmat Ali5,Choudhary Muhammad Aziz6,Khan Muhammad Asad7

Affiliation:

1. School of Chemical Engineering Universiti Sains Malaysia Engineering Campus, Seri Ampangan 14300 Nibong Tebal S.P.S. Penang Malaysia

2. Department of Materials The University of Manchester Oxford Road Manchester M13 9PL UK

3. Functional Nanomaterials Laboratory Department of Chemistry Mirpur University of Science and Technology (MUST) Mirpur 10250 (AJK) Pakistan

4. Department of Physics National Excellence Institute (University) Islamabad 04524 Pakistan

5. Pharmaceutical Biotechnology Laboratory Department of Pharmaceutical Chemistry College of Pharmacy King Saud University Riyadh 11451 Saudi Arabia

6. Department of Chemistry Mirpur University of Science and Technology (Must) Mirpur 10250 (AJK) Pakistan

7. Department of Mathematics and Physics University of Campania “Luigi Vanvitelli” 81100 Caserta Italy

Abstract

AbstractPhotoanodes possessing multifunctionality for efficient clean fuel generation have garnered significant attention. In this study, we present successful fabrication of tungsten‐doped ZnO photoelectrodes, resulting in enhanced photoelectrochemical water‐splitting performance. A single‐step deposition process was employed to achieve thin films with excellent adhesion on FTO substrates, eliminating the need for post‐annealing treatments. The addition of tungsten into the ZnO matrix extended the optical absorbance range of the thin films to the visible spectrum, leading to improved photoelectrochemical performance under visible light irradiation. At an applied potential of 0.85 V vs. RHE, the as‐fabricated tungsten‐doped ZnO thin films exhibited a remarkable photocurrent density of 5218 μA/cm2, which was eight times higher than that of the undoped ZnO electrode. The incorporation of tungsten in the ZnO photoanode resulted in increased charge carrier density and enhanced visible light absorption, consequently elevating the photocurrent density.

Publisher

Wiley

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