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Open AccessDOI: 10.1007/s40843-025-3892-2Original Research

Atomically dispersed Pt species anchored on Al3+-doped SrTiO3 for photocatalytic overall water splitting

Key Laboratory for Ultrafine Materials of Ministry of Education, School of Materials Science and Engineering, East China University of Science and Technology

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Atomically dispersed Pt species anchored on Al3+-doped SrTiO3 for photocatalytic overall water splitting
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SCIENCE CHINA Materials
Published:January 15, 2026Edition:Vol. 69, Issue 7 • pp. 100-112Citation:Mengmin Wang et al. (2026), SCIENCE CHINA Materials
Impact Factor3.5 (Q2 Scopus)
Source Journal中国科学: 材料
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Key Takeaways & Executive Findings

  • • • Achieved H2 and O2 evolution rates of 13.62 and 6.71 mmol h−1 g−1, respectively, with a turnover frequency (TOF) of 2114.5 h−1, demonstrating superior activity for overall water splitting. • • Utilized icing-assisted photochemical reduction to anchor atomically dispersed Pt on Al3+-doped SrTiO3, enabling precise control of Pt oxidation state (Pt4+ to Pt2+) as confirmed by NMR. • • Single-atom Pt co-catalysts enhance directional charge transfer and suppress surface recombination, as evidenced by advanced characterizations and theoretical calculations. • • The work establishes a scalable strategy for designing single-atom co-catalysts with minimal precious metal loading, addressing cost and efficiency bottlenecks in photocatalytic water splitting.

Abstract

Single-atom co-catalysts on semiconductor substrates offer a cost-efficient route to enhance photocatalytic performance with minimal precious metal loading. However, precise tuning of local coordination environments and construction of efficient single-atom co-catalysts remain challenging for overall water splitting. Here, we employ an icing-assisted photochemical reduction strategy to anchor atomically dispersed Pt species as hydrogen evolution co-catalysts on Al3+-doped SrTiO3 (Pt SA-STO). The optimized Pt SA-STO exhibits remarkable activity, with hydrogen and oxygen evolution rates of 13.62 and 6.71 mmol h−1 g−1, respectively, and a turnover frequency (TOF) of 2114.5 h−1. We pioneer the use of nuclear magnetic resonance (NMR) spectroscopy to quantitatively track the temporal evolution of Pt4+ to Pt2+ under continuous irradiation during the icing-assisted photoreduction. Advanced characterizations and theoretical calculations confirm that single-atom Pt co-catalysts facilitate directional transfer and extraction of photogenerated charge carriers, effectively suppressing surface recombination. This work provides insights into designing novel single-atom co-catalysts by deepening understanding of electronic configurations and active sites in photocatalytic overall water splitting.

1. Introduction

Solar-driven overall water splitting is a promising technology for renewable hydrogen production, yet its commercial viability is hindered by sluggish surface reaction kinetics and the need for efficient co-catalysts. Traditional co-catalysts, often in nanoparticle form, suffer from low atom utilization and suboptimal charge carrier dynamics, limiting overall efficiency. The challenge is to design co-catalysts that simultaneously suppress back reactions, achieve anisotropic loading, and balance hydrogen and oxygen evolution reactions.

This work addresses these bottlenecks by employing an icing-assisted photochemical reduction to anchor atomically dispersed Pt on Al3+-doped SrTiO3. This approach enables precise control over the Pt coordination environment and oxidation state, resulting in a single-atom co-catalyst that significantly enhances charge separation and surface reaction kinetics. The optimized Pt SA-STO achieves exceptional hydrogen and oxygen evolution rates, demonstrating a viable path toward efficient and cost-effective photocatalytic overall water splitting.

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Cite This Research Paper
Mengmin Wang, Zhenming Li, Wenbo Li, Wenjing Li, Yang Zhang, Pengcheng Ding, Yuyang Tang, Haiyang Yuan, Sheng Dai, Xuelu Wang, Pengfei Liu, Huagui Yang (2026). Atomically dispersed Pt species anchored on Al3+-doped SrTiO3 for photocatalytic overall water splitting. SCIENCE CHINA Materials. https://doi.org/10.1007/s40843-025-3892-2
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Frequently Asked Questions

What is the specific role of Al3+ doping in SrTiO3 for enhancing photocatalytic activity?

Al3+ doping in SrTiO3 modifies the electronic structure, potentially improving charge separation and surface properties, which synergistically works with Pt single atoms to enhance overall water splitting performance.

How does the icing-assisted photochemical reduction method control the Pt oxidation state?

The icing method slows down the reduction kinetics, allowing precise control of Pt species formation. NMR spectroscopy tracked the temporal evolution from Pt4+ to Pt2+, indicating that the method enables tuning of the Pt oxidation state, which is crucial for catalytic activity.

What are the long-term stability and recyclability of Pt SA-STO under continuous operation?

While the abstract does not provide explicit long-term stability data, the high TOF and sustained evolution rates suggest robust activity. Further studies would be needed to assess deactivation mechanisms and recyclability under prolonged irradiation.

How does the performance of Pt SA-STO compare to conventional Pt nanoparticle co-catalysts?

Pt SA-STO achieves a TOF of 2114.5 h−1, which is significantly higher than typical Pt nanoparticle co-catalysts due to maximal atom utilization and optimized electronic interactions, leading to enhanced charge transfer and reduced recombination.

What are the scalability prospects for this synthesis method in industrial applications?

The icing-assisted photochemical reduction is a relatively simple and potentially scalable method. However, industrial scale-up would require optimization of precursor concentrations, light sources, and reactor design to maintain uniformity and cost-effectiveness.

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