Electro- and thermochromic materials change their optical properties through the physical movement of atomic species within thin films. This movement is induced by electric fields or high temperatures and occurs on the second to minute timescale. Ultrashort laser pulses can manipulate atomic positions on the femto- to picosecond timescale. In this work, we modulated the optical properties of a palladium hydride nanoparticulate thin film on the picosecond timescale using femtosecond optical pulses. Density functional theory calculations confirmed that the incident photons activate interstitial hydrogen atoms and the subsequent trajectories of these atoms affect the dielectric properties of the palladium hydride thin film. These responsive interstitial hydrogen atoms provide a modulator for optical switching on the picosecond timescale and could lead to faster photochromic materials.

Ultrafast Optical Hydrogen Modulator in a Palladium Hydride Nanoparticulate Thin Film / F. Morabito, P.H.A.. - In: NANOPHOTONICS. - ISSN 2192-8614. - 15:17(2026 Sep 11), pp. e70288.1-e70288.10. [10.1002/nap2.70288]

Ultrafast Optical Hydrogen Modulator in a Palladium Hydride Nanoparticulate Thin Film

M. Di Vece
Ultimo
2026

Abstract

Electro- and thermochromic materials change their optical properties through the physical movement of atomic species within thin films. This movement is induced by electric fields or high temperatures and occurs on the second to minute timescale. Ultrashort laser pulses can manipulate atomic positions on the femto- to picosecond timescale. In this work, we modulated the optical properties of a palladium hydride nanoparticulate thin film on the picosecond timescale using femtosecond optical pulses. Density functional theory calculations confirmed that the incident photons activate interstitial hydrogen atoms and the subsequent trajectories of these atoms affect the dielectric properties of the palladium hydride thin film. These responsive interstitial hydrogen atoms provide a modulator for optical switching on the picosecond timescale and could lead to faster photochromic materials.
Settore PHYS-03/A - Fisica sperimentale della materia e applicazioni
   QUantum reservoir cOmputing based on eNgineered DEfect NetworkS in trAnsition meTal dichalcogEnides
   QUONDENSATE
   European Commission
   Horizon Europe Framework Programme - HORIZON EIC Grants
   101130384
11-set-2026
6-set-2026
Article (author)
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/1271240
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