In Situ Optical and Stress Characterization of Alloyed PdAu Hydrides.

ACS Appl Mater Interfaces

Sensors and Electron Devices Directorate , U.S. Army Research Laboratory , 2800 Powder Mill Road , Adelphi , Maryland 20783-1197 , United States.

Published: December 2019

AI Article Synopsis

  • PdAu alloys show promise for advanced optical hydrogen sensors, maintaining high chemical durability and sensitivity to hydrogen gas.
  • A study combines techniques like in situ ellipsometry and stress measurements to analyze the dynamic optical properties of these alloys during hydrogen exposure, revealing a strong sensitivity in the near-infrared range.
  • Findings suggest that even alloys with only 34% Pd exhibit significant hydrogen response, challenging previous assumptions and highlighting the impact of film stress and microstructure on behavior, setting the stage for improved sensor designs.

Article Abstract

PdAu alloys have recently shown great promise for next-generation optical hydrogen sensors due to their increased chemical durability while their optical sensitivity to small amounts of hydrogen gas is maintained. However, the correlation between chemical composition and the dynamic optical behavior upon hydrogenation/dehydrogenation is currently not well understood. A complete understanding of this relation is necessary to optimize future sensors and nanophotonic devices. Here, we quantify the dynamic optical, chemical, and mechanical properties of thin film PdAu alloys as they are exposed to H by combining in situ ellipsometry with gravimetric and stress measurements. We demonstrate the dynamic optical property dependence of the film upon hydrogenation and directly correlate it with the hydrogen content up to a maximum of 7 bar of H. With this measurement, we find that the thin films exhibit their strongest optical sensitivity to H in the near-infrared. We also discover higher hydrogen-loading amounts as compared to previous measurements for alloys with low atomic percent Pd. Specifically, a measurable optical and gravimetric hydrogen response in alloys as low as 34% Pd is found, when previous works have suggested a disappearance of this response near 55% Pd. This result suggests that differences in film stress and microstructuring play a crucial role in the sorption behavior. We directly measure the thin film stress and morphology upon hydrogenation and show that the alloys have a substantially higher relative stress change than pure Pd, with the pure Pd data point falling 0.9 GPa below the expected trend line. Finally, we use the measured optical properties to illustrate the applicability of these alloys as grating structures and as a planar physical encryption scheme, where we show significant and variable changes in reflectivity upon hydrogenation. These results lay the foundation for the composition and design of next-generation hydrogen sensors and tunable photonic devices.

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Source
http://dx.doi.org/10.1021/acsami.9b14244DOI Listing

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