4.7 Article

Optimization of the Composition of PdAuCu Ternary Alloy Nanoparticles for Plasmonic Hydrogen Sensing

Journal

ACS APPLIED NANO MATERIALS
Volume 4, Issue 9, Pages 8716-8722

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsanm.1c01242

Keywords

ternary alloy; plasmonic hydrogen sensing; hydrogen; CO; poisoning; hysteresis; palladium; gold; copper

Funding

  1. Swedish Foundation for Strategic Research [RMA150052]
  2. Knut and Alice Wallenberg Foundation [2016.0210]
  3. Swedish Energy Agency [49103-1]

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Alloying Pd nanoparticles with coinage metals Au and Cu has proven effective for improving the performance of hydrogen sensors, although there exists a trade-off between enhancing sensitivity and resistance to CO poisoning provided by the alloyants.
Alloying is a long-standing central strategy in materials science for the tailoring and optimization of bulk material properties, which more recently has started to find application also in engineered nanomaterials and nanostructures used in, among other, nanoplasmonic hydrogen sensors. Specifically, alloying Pd nanoparticles to form binaries and ternaries with the coinage metals Au and Cu has proven efficient to mitigate hysteresis in the sensor response, improve response and recovery times, boost sensitivity in the low hydrogen concentration sensing range, and reduce the detrimental impact of carbon monoxide poisoning. However, when surveying the corresponding studies, it is clear that there is a trade-off between the sensitivity enhancement and the CO-poisoning resistance effects provided by Au and Cu alloyants, respectively. Therefore, in this work, we systematically screen the impact of the Au and Cu concentration in PdAuCu ternary alloy nanoparticles used for plasmonic hydrogen sensing, to obtain a champion system with maximized sensitivity and CO-poisoning resistance based on an evaluation using the stringent ISO 26142 test protocol. As the main results, we find that the best hysteresis-free and sensitive response combined with deactivation resistance to 500 ppm CO in synthetic air is obtained for the Pd65Au25Cu10 ternary alloy system, which also exhibits good long-term stability during operation under severe CO poisoning conditions.

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