Pt Nanoparticles Supported on Ta-Doped TiO2 for Durable Proton Exchange Membrane Water Electrolysis

Abstract Platinum (Pt) is more earth-abundant and corrosion-resistant than iridium (Ir), yet its deployment as an acidic oxygen anode has been abandoned due to the formation of a self-passivating, insulating PtO2 film. Here, we show that this century-old bottleneck can be alleviated by an electron-shuttling junction in which Pt nanoparticles are anchored to a tantalum (Ta)-doped titanium dioxide support, with Fermi level higher than Pt. The built-in contact potential injects electrons into Pt via Pt–O–Ta/Ti bridges and continuously bleeds the bypass oxygen evolution electrons to Pt at high bias, thereby suppressing the formation of a passivating α–PtO2 layer. In situ spectroscopies reveal the successful preservation of Pt 5d occupancy, along with strengthened surficial water adsorption (alleviated reversed Stark effect of νOH). The assembled electrolyzer, with a Pt loading of only 350 μgPt cm–2, achieves 3 A cm–2 at 2.262 V and operates for 1500 h under 1 A cm–2 without noticeable passivation. Life cycle cost analysis estimates a green hydrogen price of US$1.56 kg–1, below both the US DOE 2026 target and the costs of contemporary alkaline electrolyzers. This concept relocates the stability problem from the noble metal to a tunable oxide, providing a general blueprint for passivation-free, platinum-based acid water-splitting catalysts.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-09-21
DOI
https://doi.org/10.1021/jacs.6c13577
Primary Topic
Electrocatalysts for Energy Conversion
Type
article
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Pt Nanoparticles Supported on Ta-Doped TiO2 for Durable Proton Exchange Membrane Water Electrolysis

Xiaoke Xi, Hengjie Liu, Huijun Jiang, Tianqi Shang et al.
Journal of the American Chemical Society
Electrocatalysts for Energy Conversion
article

Pt Nanoparticles Supported on Ta-Doped TiO2 for Durable Proton Exchange Membrane Water Electrolysis

Xiaoke Xi, Hengjie Liu, Huijun Jiang, Tianqi Shang, Zheng Rong Jiang, Junjie Ge, Ruiguo Cao, Bingbao Mei, Weiyi Zhao, Wenwen Gao, Xian Wang, Wenhui Wang, Wenmin Ma, Hao Yu
article en

Abstract

Abstract Platinum (Pt) is more earth-abundant and corrosion-resistant than iridium (Ir), yet its deployment as an acidic oxygen anode has been abandoned due to the formation of a self-passivating, insulating PtO2 film. Here, we show that this century-old bottleneck can be alleviated by an electron-shuttling junction in which Pt nanoparticles are anchored to a tantalum (Ta)-doped titanium dioxide support, with Fermi level higher than Pt. The built-in contact potential injects electrons into Pt via Pt–O–Ta/Ti bridges and continuously bleeds the bypass oxygen evolution electrons to Pt at high bias, thereby suppressing the formation of a passivating α–PtO2 layer. In situ spectroscopies reveal the successful preservation of Pt 5d occupancy, along with strengthened surficial water adsorption (alleviated reversed Stark effect of νOH). The assembled electrolyzer, with a Pt loading of only 350 μgPt cm–2, achieves 3 A cm–2 at 2.262 V and operates for 1500 h under 1 A cm–2 without noticeable passivation. Life cycle cost analysis estimates a green hydrogen price of US$1.56 kg–1, below both the US DOE 2026 target and the costs of contemporary alkaline electrolyzers. This concept relocates the stability problem from the noble metal to a tunable oxide, providing a general blueprint for passivation-free, platinum-based acid water-splitting catalysts.

Journal of the American Chemical Society
University of Science and Technology of China (CN), Anhui University of Science and Technology (CN), Anhui Science and Technology University (CN), Shanghai Advanced Research Institute (CN), Yulin University (CN)
Responsible consumption and production
Openalex Percentile: Top 29%
Electrocatalysts for Energy Conversion
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