Imaging GHz surface acoustic wave modes in electrostricted LaAlO3/SrTiO3 heterostructures

R Ranjani Ramachandran (Department of Physics and Astronomy, University of Pittsburgh 1 , Pittsburgh, Pennsylvania 15260,) S Sayanwita Biswas (Department of Physics and Astronomy, University of Pittsburgh 1 , Pittsburgh, Pennsylvania 15260,) P Prithwijit Mandal (Department of Materials Science and Engineering, University of Wisconsin-Madison 4 , Madison, Wisconsin 53706,) K Kyoungjun Lee (Department of Materials Science and Engineering, University of Wisconsin-Madison 4 , Madison, Wisconsin 53706,) M Madeleine Msall (Department of Physics and Astronomy, Bowdoin College 2 , Brunswick, Maine 04011,) C Chang-Beom Eom P Patrick Irvin (Department of Physics and Astronomy, University of Pittsburgh 1 , Pittsburgh, Pennsylvania 15260,) J Jeremy Levy (Department of Physics and Astronomy, University of Pittsburgh 1 , Pittsburgh, Pennsylvania 15260,) M Mingyun Yuan (Paul-Drude-Institut für Festkörperelektronik, Leibniz-Institut im Forschungsverbund Berlin e.V. 1 , Hausvogteiplatz 5-7, 10117 Berlin,)

Abstract

The LaAlO3/SrTiO3 (LAO/STO) interface hosts a gate-tunable superconducting two-dimensional electron gas (2DEG), which can be programmed to create quantum devices, such as ballistic electron waveguides and quantum dots. To fully exploit this platform for quantum transport, a key requirement is the ability to shuttle single electrons, electron pairs, and other exotic states between spatially separated devices with precision. Surface acoustic waves (SAWs), which travel along the surface of a solid, offer a powerful route to achieve this through their moving electrical potential that captures and transfers electrons. In particular, SAWs in the GHz regime enable fast, controlled transport of individual quantum particles. Although this approach is well-explored in GaAs-based 2DEG, SAW generation in STO remains largely unexplored due to the lack of intrinsic piezoelectricity at room temperature. Here, we investigate room-temperature SAWs in LAO/STO and observe SAW modes up to 2.2 GHz with very low propagation loss of the order 10−3 dB per wavelength. To directly visualize these modes, we employ atomic acoustic force microscopy, achieving sub-micron resolution imaging of the SAW wave forms, providing insight into the electrostriction-induced SAW generation mechanism. Our measurements indicate a shear horizontal-type mode, which provides the ability to couple to in-plane degrees of freedom for future acoustoelectric and quantum device applications. This work studies the fundamentals of SAW excitation and propagation on STO, a widely used and commercially available substrate, enabling straightforward coupling of SAWs to a broad range of materials that can be grown or transferred onto STO.

Article Details

Volume / Issue Vol. 128, Issue 18
Published May 04, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (9)

R

Ranjani Ramachandran

Department of Physics and Astronomy, University of Pittsburgh 1 , Pittsburgh, Pennsylvania 15260,

S

Sayanwita Biswas

Department of Physics and Astronomy, University of Pittsburgh 1 , Pittsburgh, Pennsylvania 15260,

P

Prithwijit Mandal

Department of Materials Science and Engineering, University of Wisconsin-Madison 4 , Madison, Wisconsin 53706,

K

Kyoungjun Lee

Department of Materials Science and Engineering, University of Wisconsin-Madison 4 , Madison, Wisconsin 53706,

M

Madeleine Msall

Department of Physics and Astronomy, Bowdoin College 2 , Brunswick, Maine 04011,

C

Chang-Beom Eom

P

Patrick Irvin

Department of Physics and Astronomy, University of Pittsburgh 1 , Pittsburgh, Pennsylvania 15260,

J

Jeremy Levy

Department of Physics and Astronomy, University of Pittsburgh 1 , Pittsburgh, Pennsylvania 15260,

M

Mingyun Yuan

Paul-Drude-Institut für Festkörperelektronik, Leibniz-Institut im Forschungsverbund Berlin e.V. 1 , Hausvogteiplatz 5-7, 10117 Berlin,