X-ray driven displacive excitation of coherent phonons
Oleg Dogadov, Remi Claude, Christoph Emeis, Giovanni Batignani, Giuseppe Fumero, Roberto Costantini, Agata Azzolin, Sabine Rockenstein, Paolo Cattaneo, Rebeca Gomez Castillo, Matteo Manzi, Angelo Giglia, Dario De Angelis, Ettore Paltanin, Zeinab Ebrahimpour, Marija Krstulovic, Gabor Kurdi, Miltcho Danailov, Luca Giannessi, Riccardo Mincigrucci, Emiliano Principi, Alberto Crepaldi, Giulio Cerullo, Giovanni De Ninno, Claudio Masciovecchio, Laura Foglia, Tullio Scopigno, Fabrizio Carbone, Francesca Calegari, Fabio Caruso, Michele Puppin, Oliviero Cannelli
Abstract
Modulating electron-phonon coupling offers a route to control structural displacements and tune material functionality. Valence-to-conduction band transitions, however, provide limited leverage over the driving force. Here, we demonstrate coherent lattice dynamics in trigonal tellurium using free-electron laser pulses tuned to the Te N4,5-edge. Over a broad fluence range, the oscillation amplitude obeys the displacive excitation of coherent phonons framework, extended to core resonance with twice the driving efficiency of a visible pump. Ab initio calculations decompose the force into competing multiband contributions, inaccessible to optical excitation, whose balance shifts as carriers relax. Tunable extreme-ultraviolet and X-ray pulses thus open a regime in which the displacive response is set by band-dependent coupling to the lattice, not by the number and temperature of the photocarriers alone.
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