Engineering Synergistic Pd-Ni Co-Modified System for Highly Efficient Hydrogen Sensing.

Journal: ACS sensors
Published Date:

Abstract

The development of hydrogen sensors with low operating temperatures, high sensitivity, and high selectivity is critically important for ensuring safety during hydrogen production, transportation, and storage. Palladium-functionalized metal oxide semiconductors are widely recognized for their excellent hydrogen selectivity. However, the oxidation and agglomeration of Pd severely deteriorate long-term sensing performance. Herein, a bimetallic modulation strategy is proposed by introducing NiO as a secondary dopant to construct Pd-NiO/WO3 nanospheres, enabling synergistic regulation of Pd valence states, dispersion, and catalytic activity. Benefiting from the bimetallic synergistic effect, the Pd-NiO/WO3 nanospheres exhibit markedly enhanced hydrogen sensing performance at a low operating temperature of 160 °C, delivering a high response of 25 toward 50 ppm H2 (1.67 times higher than that of Pd-WO3), along with fast response-recovery kinetics, excellent hydrogen selectivity, and good long-term stability. Mechanistic investigations reveal that NiO enhances oxygen adsorption and effectively suppresses Pd oxidation, thereby optimizing Pd loading states and promoting catalytic hydrogen dissociation. Furthermore, machine learning-assisted gas discrimination achieved a classification accuracy of 95.8%, further enhancing hydrogen selectivity. Notably, the Pd-NiO/WO3 sensor demonstrates reliable detection of hydrogen generated from a water-splitting device, highlighting its practical applicability. This work provides an effective strategy for engineering synergistic co-modified system toward high-performance hydrogen sensing.

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