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Harvesting Solar Energy by Means of Charge-Separating Nanocrystals and Their Solids
Published on: August 23, 2012
Full-Spectrum-Responsive Au@Cu7S4-Decorated Monoclinic TiO2 Nanowires for Solar Hydrogen Production
Yu-Ting Wang1, Hsuan-Hung Kuo1, Chun-Yi Chen2
1Department of Materials Science and Engineering, National Yang Ming Chiao Tung University, Hsinchu 300093, Taiwan.
Abstract:
Developing photocatalysts that can efficiently capture light across a broad spectrum, from ultraviolet to near-infrared, is crucial for maximizing solar energy utilization. Such broad-spectrum responsiveness enhances solar energy utilization in photocatalysis, enabling a more sustainable and efficient pathway for hydrogen production. The limited availability of photocatalysts capable of responding to near-infrared irradiation underscores the urgent need for the development of versatile near-infrared-responsive photocatalysts. In this work, TiO2 nanowires in the monoclinic phase, a less common crystallographic form of TiO2, were synthesized, followed by a decoration with Au particles surrounded by a hollow Cu7S4 shell. The resulting TiO2-Au@Cu7S4 heterostructure nanowires exhibited remarkable properties conducive to efficient solar hydrogen production. The band structure alignment among TiO2, Au, and Cu7S4 induced a Z-scheme charge separation mechanism, which boosted both the carrier utilization efficiency and redox powers. Furthermore, incorporating Au@Cu7S4 significantly broadened the absorption capability of TiO2 into the visible and near-infrared spectral ranges. This enhancement arose primarily from the inherent bandgap absorption of Cu7S4, as well as the plasmonic properties of Au and Cu7S4 components. Additionally, the hydrophilic surface of TiO2-Au@Cu7S4 enhanced the water accessibility, which promoted interactions between water molecules and the photocatalyst surface. By integrating these characteristics, TiO2-Au@Cu7S4 heterostructure nanowires demonstrated noteworthy efficiency in solar hydrogen production across a wide spectral region, achieving notable apparent quantum yields of 10.51% at 300 nm, 4.38% at 450 nm, 4.17% at 800 nm, and 3.66% at 1800 nm. Notably, TiO2-Au@Cu7S4 surpassed all of the near-infrared-responsive TiO2-based photocatalysts ever reported in hydrogen production. The findings can provide a practical strategy to design a full-spectrum-responsive TiO2-based photocatalyst for widespread use in photocatalytic processes.

