Ultrafast Terahertz Field Control of the Emergent Magnetic and Electronic Interactions at Oxide Interfaces

A Abigail M. Derrico (Department of Physics Temple University Philadelphia PA 19122 USA) M Martina Basini (Department of Physics Stockholm University Stockholm 10691 Sweden) V Vivek Unikandanunni (Department of Physics Stockholm University Stockholm 10691 Sweden) J Jay R. Paudel (Chemical Sciences Division) M Mikhail Kareev M Michael Terilli T Tsung‐Chi Wu (Department of Physics and Astronomy Rutgers University Piscataway NJ 08854 USA) A Afnan Alostaz (Peter Grünberg Institut (PGI‐6) Forschungszentrum Jülich GmbH D‐52425 Jülich Germany) C Christoph Klewe (Materials Sciences Division, Lawrence Berkeley National Laboratory) P Padraic Shafer (Advanced Light Source, Lawrence Berkeley National Laboratory 7 , Berkeley, California 94720,) A Andrei Gloskovskii (Deutsches Elektronen‐Synchrotron DESY 22607 Hamburg Germany) C Christoph Schlueter C Claus M. Schneider (Peter Grünberg Institute (PGI‐6) Jülich Research Center Jülich Germany) J Jak Chakhalian S Stefano Bonetti (Department of Physics Stockholm University Stockholm 10691 Sweden) A Alexander X. Gray (Department of Physics Temple University Philadelphia PA 19122 USA)

Abstract

Abstract Ultrafast electric‐field control of emergent electronic and magnetic states at oxide interfaces offers exciting prospects for the development of the next generation of energy‐efficient devices. Here, it is demonstrated that the electronic structure and emergent ferromagnetic interfacial state in epitaxial LaNiO 3 /CaMnO 3 superlattices can be effectively controlled using intense, single‐cycle THz electric‐field pulses. A suite of advanced X‐ray spectroscopic techniques is employed to measure a detailed magneto‐optical profile and the thickness of the ferromagnetic interfacial layer. Then, a combination of time‐resolved and temperature‐dependent optical measurements is used to disentangle several correlated electronic and magnetic processes driven by ultrafast, high‐field THz pulses. Sub‐picosecond non‐equilibrium Joule heating of the electronic system is observed, ultrafast demagnetization of the ferromagnetic interfacial layer, and slower dynamics indicative of a change in the magnetic state of the superlattice due to the transfer of spin‐angular momentum to the lattice. These findings suggest a promising avenue for the efficient control of 2D ferromagnetic states at oxide interfaces using ultrafast electric‐field pulses.

Article Details

Volume / Issue Vol. 38, Issue 8
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (16)

A

Abigail M. Derrico

Department of Physics Temple University Philadelphia PA 19122 USA

M

Martina Basini

Department of Physics Stockholm University Stockholm 10691 Sweden

V

Vivek Unikandanunni

Department of Physics Stockholm University Stockholm 10691 Sweden

J

Jay R. Paudel

Chemical Sciences Division

M

Mikhail Kareev

M

Michael Terilli

T

Tsung‐Chi Wu

Department of Physics and Astronomy Rutgers University Piscataway NJ 08854 USA

A

Afnan Alostaz

Peter Grünberg Institut (PGI‐6) Forschungszentrum Jülich GmbH D‐52425 Jülich Germany

C

Christoph Klewe

Materials Sciences Division, Lawrence Berkeley National Laboratory

P

Padraic Shafer

Advanced Light Source, Lawrence Berkeley National Laboratory 7 , Berkeley, California 94720,

A

Andrei Gloskovskii

Deutsches Elektronen‐Synchrotron DESY 22607 Hamburg Germany

C

Christoph Schlueter

C

Claus M. Schneider

Peter Grünberg Institute (PGI‐6) Jülich Research Center Jülich Germany

J

Jak Chakhalian

S

Stefano Bonetti

Department of Physics Stockholm University Stockholm 10691 Sweden

A

Alexander X. Gray

Department of Physics Temple University Philadelphia PA 19122 USA