4.8 Article

Robust Colloidal Synthesis of Palladium-Gold Alloy Nanoparticles for Hydrogen Sensing

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 13, Issue 38, Pages 45758-45767

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c15315

Keywords

metal nanoparticles; nanoparticle synthesis; colloidal synthesis; hydrogen; palladium-gold alloys; sensors

Funding

  1. Swedish Foundation for Strategic Research [RMA15-0052]
  2. Knut and Alice Wallenberg Foundation [2016.0210, 2015.0055]
  3. Swedish Research Council [2015-05115]
  4. Vinnova [2015-05115] Funding Source: Vinnova
  5. Swedish Research Council [2015-05115] Funding Source: Swedish Research Council

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Metal nanoparticles, particularly palladium-gold alloy nanoparticles, show great potential for hydrogen sensing applications. A novel colloidal synthesis method has been proposed to synthesize palladium-gold alloy nanoparticles with hysteresis-free response, allowing for tunability in particle size and alloy composition.
Metal nanoparticles are currently used in a variety of applications, ranging from life sciences to nanoelectronic devices to gas sensors. In particular, the use of palladium nanoparticles is gaining increasing attention due to their ability to catalyze the rapid dissociation of hydrogen, which leads to an excellent response in hydrogen-sensing applications. However, current palladium-nanoparticle-based sensors are hindered by the presence of hysteresis upon hydride formation and decomposition, as this hysteresis limits sensor accuracy. Here, we present a robust colloidal synthesis for palladium-gold alloy nanoparticles and demonstrate their hysteresis-free response when used for hydrogen detection. The obtained colloidal particles, synthesized in an aqueous, room-temperature environment, can be tailored to a variety of applications through changing the size, ratio of metals, and surface stabilization. In particular, the variation of the viscosity of the mixture during synthesis resulted in a highly tunable size distribution and contributed to a significant improvement in size dispersity compared to the state-of-the-art methods.

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