Electron pressure drives THz phonons in metal–metal superlattices

J Jan-Etienne Pudell (European X-Ray Free-Electron Laser Facility) M Maximilian Mattern M Marc Herzog A Alexander von Reppert C Chandan K. Singh (Department of Physics, Indian Institute of Science Education and Research (IISER), Pune, Dr. Homi Bhabha Road, Pune 411008, India) D Daniel Schick M Michel Hehn U Ulrike Boesenberg (European X-Ray Free-Electron Laser Facility) A Angel Rodriguez-Fernandez (European X-Ray Free-Electron Laser Facility) R Roman Shayduk (European X-Ray Free-Electron Laser Facility) W Wonhyuk Jo (European X-Ray Free-Electron Laser Facility) J Johannes Möller (European X-Ray Free-Electron Laser Facility) J Jörg Hallmann (European X-Ray Free-Electron Laser Facility) J James Wrigley (European X-Ray Free-Electron Laser Facility) P Peter M. Oppeneer A Anders Madsen (European X-Ray Free-Electron Laser Facility) M Matias Bargheer

Abstract

Abstract Ultrafast control of lattice motion in metals is a central challenge for high-frequency strain engineering and spintronic applications. Coherent strain control at terahertz (THz) frequencies in metals has remained elusive because free electrons are expected to delocalize energy beyond the optical penetration depth, preventing rapid and efficient stress generation. Here we show that robust and cost-effective metal–metal superlattices (SLs), where periodic repetitions of bilayers — each layer a few atoms thick — are deposited by sputtering, constitute thermoacoustic metamaterials that overcome this limitation. We combine femtosecond X-ray diffraction with mode-resolved density-functional theory and two-temperature modeling to show that electron pressure, rather than phonon stress, drives a large-amplitude coherent terahertz (1 THz) lattice oscillation in sputtered Pt/Cu superlattices. We establish electron pressure as an engineerable, dominant actuation mechanism in metallic metamaterials which can be tailored by the pitch and the constituent materials of the sputtered SL structure, enabling applications such as ultrafast strain-mediated antiferromagnetic spintronic devices.

Article Details

Volume / Issue Vol. 17, Issue 1
Published June 16, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

J

Jan-Etienne Pudell

European X-Ray Free-Electron Laser Facility

M

Maximilian Mattern

M

Marc Herzog

A

Alexander von Reppert

C

Chandan K. Singh

Department of Physics, Indian Institute of Science Education and Research (IISER), Pune, Dr. Homi Bhabha Road, Pune 411008, India

D

Daniel Schick

M

Michel Hehn

U

Ulrike Boesenberg

European X-Ray Free-Electron Laser Facility

A

Angel Rodriguez-Fernandez

European X-Ray Free-Electron Laser Facility

R

Roman Shayduk

European X-Ray Free-Electron Laser Facility

W

Wonhyuk Jo

European X-Ray Free-Electron Laser Facility

J

Johannes Möller

European X-Ray Free-Electron Laser Facility

J

Jörg Hallmann

European X-Ray Free-Electron Laser Facility

J

James Wrigley

European X-Ray Free-Electron Laser Facility

P

Peter M. Oppeneer

A

Anders Madsen

European X-Ray Free-Electron Laser Facility

M

Matias Bargheer