Pd- and Pt-based nanomaterials for hydrogen sensing in complex environments: the role of composition, morphology and defects
Doktorsavhandling, 2026
In this thesis, the hydrogen sorption characteristics and morphological evolution of neat Pd, Pt, and more than 70 alloy combinations of the two, both at the single nanoparticle and at the ensemble level are investigated. To do so, we have developed a new nanolithography fabrication method, that is combined with plasmonic nanospectroscopy, dark-field nanomicroscopy and electron microscopy and spectroscopy.
First, we find a strong intrinsic link between the evolution of hydrogen sorption kinetics and single-particle specific defect networks. Secondly, we quantify how a few atomic percent of secondary alloyants can stabilize the structure of these particles during heavy H2 cycling and consequently also stabilize the time evolution of hydrogen sorption kinetics. This is important in H2 sensor applications because it paves the way to sensors which deliver a stable response over extended operation. We also demonstrate how systematic alloy composition screening of Pd- and Pt-based alloy and hybrid nanoparticles, together with advanced deep learning-based data analyzation, can be leveraged to achieve plasmonic H2 sensors that operate efficiently in technologically relevant, but highly challenging, environments, i.e., air with high levels of O2, CO, NOx and varying relative humidities.
nanoparticles
hydrogen
nanofabrication
multiplexing
palladium
hydride
sensor
alloy
plasmonics
platinum
defect engineering
Författare
Carl Andersson
Chalmers, Fysik, Kemisk fysik
Hydride formation pressures and kinetics in individual Pd nanoparticles with systematically varied levels of plastic deformation
Nature Communications,;Vol. 16(2025)
Artikel i vetenskaplig tidskrift
A Catalytic-Plasmonic Pt Nanoparticle Sensor for Hydrogen Detection in High-Humidity Environments
ACS Sensors,;Vol. 10(2025)p. 8983-8994
Artikel i vetenskaplig tidskrift
Theodoridis, A., Andersson, C., Martvall, V., Colliander, W., Erhart, P., Langhammer, C. Pd-Pt Nanostructures for Deep-Learning-Augmented Plasmonic Hydrogen Sensing in Dry and Humid Air
A Microshutter for the Nanofabrication of Plasmonic Metal Alloys with Single Nanoparticle Composition Control
ACS Nano,;Vol. 17(2023)p. 15978-15988
Artikel i vetenskaplig tidskrift
Andersson, C., Theodoridis, A., Abbondanza, G., Fritzsche, J., Langhammer, C. Screening Transition Metal Alloys with Single Nanoparticle Resolution for the Rational Design of Plasmonic Hydrogen Sensors
Klein Moberg, H., Theodoridis, A., Andersson, C., Fritzsche, J., Nilsson, S., Langhammer, C. A Quantitative Transformer-Augmented and Virtual-Material-Multiplexed Plasmonic Hydrogen Sensor for Chemically Deactivating Humid Air Environments.
In this thesis, I investigate how the structure and composition of Pd and Pt-based nanomaterials influence their performance for hydrogen sensing, specifically targeted for operation in complex, realistic atmospheres. To this end, the work presented here ranges from the fabrication and study of individual alloy nanoparticles, to fully realized sensor systems which demonstrate accurate detection of hydrogen in highly challenging urban environments.
Styrkeområden
Nanovetenskap och nanoteknik
Ämneskategorier (SSIF 2025)
Den kondenserade materiens fysik
DOI
10.63959/chalmers.dt/5868
ISBN
978-91-8103-411-0
Doktorsavhandlingar vid Chalmers tekniska högskola. Ny serie: 5868
Utgivare
Chalmers
Kollektorn, Kemivägen 9, Chalmers
Opponent: Dr. Andreas Borgschulte, EMPA, Switzerland