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Pd-Decorated PdO Hollow Shells: A H2-Sensing System in Which Catalyst Nanoparticle and Semiconductor Support are
Zhimin Gao1, Tieqiang Wang1, Xuefei Li1
1Department of Chemistry, College of Sciences, Northeastern University, Shenyang 110189, P. R. China.
ACS Applied Materials & Interfaces
|September 1, 2020
Summary
A new strategy fabricates highly stable palladium-decorated palladium oxide hollow shells (Pd/PdO HSs) for hydrogen sensors. These sensors show excellent performance and can be reactivated, extending their operational lifetime.
Area of Science:
- Materials Science
- Nanotechnology
- Chemical Engineering
Background:
- Developing high-performance hydrogen sensors with long-term stability is challenging.
- Traditional sensors like Pd/TiO2 and Pd/ZnO face limitations in stability and nanoparticle management.
- A novel approach is needed to improve sensor durability and performance.
Purpose of the Study:
- To develop a simple and effective strategy for fabricating high-performance hydrogen sensors.
- To investigate the hydrogen-sensing properties of Pd-decorated PdO hollow shells (Pd/PdO HSs).
- To explore the unique interconvertible nature and reactivation ability of the Pd/PdO system.
Main Methods:
- Fabrication of Pd-decorated PdO hollow shells (Pd/PdO HSs) via a one-step NaBH4 treatment.
- Partial reduction of PdO to Pd, leading to controlled decoration of Pd nanoparticles (Pd NPs) on the PdO support.
- Investigation of the physical embedding of Pd NPs within the PdO support to prevent agglomeration and enhance electron transfer.
Main Results:
- Pd/PdO HSs exhibit excellent hydrogen-sensing performance with a detection limit below 1 ppm.
- Achieved rapid response and recovery times of 5 s and 32 s, respectively, at room temperature for 1% H2.
- Demonstrated repeatable reactivation of sensing performance by reoxidizing PdO HSs, extending sensor lifetime.
Conclusions:
- The presented strategy offers a convenient, time-saving method for fabricating stable hydrogen sensors without surface prefunctionalization.
- The interconvertible and self-repairing nature of the Pd/PdO system provides a novel pathway for enhancing sensor longevity.
- Pd/PdO HSs represent a promising material for advanced, long-lasting hydrogen sensing applications.

