Pd-nanoalloys for hydrogen sensing: Multiscale modeling of thermodynamic and optical properties
Licentiatavhandling, 2022
Alloying with metals such as Au and Cu is necessary to overcome issues related to hysteresis and CO poisoning. At the same time, it introduces additional difficulties related to the chemical order such as surface segregation, which is directly related to long-term stability. In this thesis, the surface composition of Pd alloyed with Au or Cu is studied as a function of H2 pressure using Monte Carlo simulations based on cluster expansions parametrized against ab-initio calculations. For Pd-Au, an increased H2 concentration abruptly switches the surface from Au to Pd dominant. For Pd-Cu, the change with H2 concentration is much more gradual with non-monotonic tendencies, with an overall surplus of Pd in most conditions.
The sensing principle is based on the shift in optical response upon H absorption. The magnitude of the sensor readout at a certain H2 pressure depends on nanoparticle geometry and alloy composition. In this thesis, extinction spectra are calculated for Pd-Au-H nanodisks using electrodynamic simulations and the corresponding H sensitivity is analyzed. It is found that the H sensitivity depends on the nanodisk diameter, mainly due to the interplay between a localized surface plasmon and an interband transition which becomes more apparent for smaller nanodisks.
Pd-alloys
hydrogen sensing
surface segregation
nanoplasmonics
nanoalloys
Författare
Pernilla Ekborg-Tanner
Chalmers, Fysik, Kondenserad materie- och materialteori
Hydrogen-driven surface segregation in Pd alloys from atomic-scale simulations
Journal of Physical Chemistry C,;Vol. 125(2021)p. 17248-17260
Artikel i vetenskaplig tidskrift
Ekborg-Tanner, P, Rahm, J. M, Rosendal, V, Rossi, T. P, Antosiewicz, T. J, Erhart, P. Computational Design of Alloy Nanostructures for Optical Sensing: The Limits of Tuning Hydrogen Sensitivity via Composition and Geometry
Drivkrafter
Hållbar utveckling
Styrkeområden
Nanovetenskap och nanoteknik
Infrastruktur
C3SE (Chalmers Centre for Computational Science and Engineering)
Ämneskategorier
Den kondenserade materiens fysik
Utgivare
Chalmers
PJ-salen, Kemigården 1
Opponent: Jinhyun Chang, DTU, Denmark