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Photocatalytic hydrogen generation represents a promising strategy for the establishment of a sustainable and environmentally friendly energy reservoir. However, the current solar-to-hydrogen conversion efficiency is not yet sufficient for practical hydrogen production, highlighting the need for further research and development. Here, we report the synthesis of a Sn-doped TiO2 continuous homojunction hollow sphere, achieved through controlled calcination time. The incorporation of a gradient doping profile has been demonstrated to generate a gradient in the band edge energy, facilitating carrier orientation migration. Furthermore, the hollow sphere’s outer and inner sides provide spatially separated reaction sites allowing for the separate acceptance of holes and electrons, which enables the rapid utilization of carriers after separation. As a result, the hollow sphere TiO2 with gradient Sn doping exhibits a significantly increased hydrogen production rate of 20.1 mmol·g−1·h−1. This study offers a compelling and effective approach to the designing and fabricating highly efficient nanostructured photocatalysts for solar energy conversion applications.

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Publication history
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Acknowledgements

Publication history

Received: 30 May 2023
Revised: 21 June 2023
Accepted: 30 June 2023
Published: 23 August 2023
Issue date: October 2023

Copyright

© Tsinghua University Press 2023

Acknowledgements

Acknowledgements

We acknowledge the National Natural Science Foundation of China (Nos. 22008121, 11774173, and 51790492), the National Outstanding Youth Science Fund Project of National Natural Science Foundation of China (No. T2125004), the Fundamental Research Funds for the Central Universities (Nos. 30920032204, 30920021307, and 30920041115), the Foundation of State Key Laboratory of High-efficiency Utilization of Coal and Green Chemical Engineering (No. 2022-K12), and the Funding of NJUST (No. TSXK2022D002) for financial support.

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