Electronic mechanism of sub-100-fs demagnetization induced by a femtosecond light pulse

K Konrad J. Kapcia V Victor Tkachenko F Flavio Capotondi A Alexander Lichtenstein S Serguei Molodtsov P Przemysław Piekarz (Institute of Nuclear Physics, Polish Academy of Sciences) B Beata Ziaja

Abstract

Abstract A quantitative understanding of the processes that trigger light-induced demagnetization on ultrashort timescales is crucial for achieving an ultrafast, radiation-controlled magnetic response in materials. This milestone is essential for developing next-generation magnetic storage devices and ultrafast magnetic switches. In this theoretical study, we investigated demagnetization triggered in a single magnetic domain by light pulses ranging from a few to a few tens of femtoseconds in duration, with photon energies spanning the optical and X-ray regimes, under strongly non-equilibrium conditions. We predicted a loss of magnetization in the sub-100-fs range in all cases, primarily due to the excitation of the electronic system and the subsequent redistribution of electrons within the magneto-sensitive band. The considered timescales were too short for phonon-mediated processes or inter-site Heisenberg exchange processes to contribute significantly. These findings pave the way for highly accurate, radiation-driven magnetization control in magnetic materials at sub-100-femtosecond timescales with potential practical applications.

Article Details

Volume / Issue Vol. 16, Issue 1
Published May 11, 2026
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (7)

K

Konrad J. Kapcia

V

Victor Tkachenko

F

Flavio Capotondi

A

Alexander Lichtenstein

S

Serguei Molodtsov

P

Przemysław Piekarz

Institute of Nuclear Physics, Polish Academy of Sciences

B

Beata Ziaja