Highly Tunable Relaxors Developed from Antiferroelectrics

H Hao Pan L Liyan Wu (Department of Mechanical Engineering and Mechanics, Drexel University) J John Carroll M Menglin Zhu Z Zishen Tian D Dongfang Chen H Hongrui Zhang X Xianzhe Chen X Xiaoxi Huang I Irina Baraban S Sreekeerthi Pamula (Rice Advanced Materials Institute Rice University Houston Texas USA) C Cedric J. G. Meyers R R. Ramesh K Kathleen Coleman B Brendan Hanrahan (U.S. Army Combat Capabilities Development Command-Army Research Laboratory 2 , Adelphi, Maryland 20783,) J James M. LeBeau J Jonathan E. Spanier (Department of Mechanical Engineering and Mechanics, Drexel University) L Lane W. Martin (Rice Advanced Materials Institute)

Abstract

AbstractHighly responsive, voltage‐tunable dielectrics are essential for microwave‐telecommunication electronics. Ferroelectric/relaxor materials have been leading candidates for such functionality and have exhibited agile dielectric responses. Here, it is demonstrated that relaxor materials developed from antiferroelectrics can achieve both ultrahigh dielectric response and tunability. The system, based on alloying the archetypal antiferroelectric PbZrO3 with the dielectric BaZrO3, exhibits a more complex phase evolution than that in traditional relaxors and is characterized by an unconventional multi‐phase competition between antiferroelectric, ferroelectric, and paraelectric order. This interplay of phases can greatly enhance the local heterogeneities and results in relaxor characteristics while preserving considerable polarizability. Upon studying Pb1‐xBaxZrO3 for x = 0‐0.45, Pb0.65Ba0.35ZrO3 is found to provide for exceptional dielectric tunability under low bias fields (≈81% at 200 kV cm−1 and ≈91% at 500 kV cm−1) at 10 kHz, outcompeting most traditional relaxor ferroelectric films. This high tunability is sustained in the radio‐frequency range, resulting in a high commutation quality factor (>2000 at 1 GHz). This work highlights the phase evolution from antiferroelectrics (with lower, “positive” dielectric tunability) to relaxors (with higher, “negative” tunability), underscoring a promising approach to develop relaxors with enhanced functional capabilities and new possibilities.

Article Details

Volume / Issue Vol. 37, Issue 32
Published August 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (18)

H

Hao Pan

L

Liyan Wu

Department of Mechanical Engineering and Mechanics, Drexel University

J

John Carroll

M

Menglin Zhu

Z

Zishen Tian

D

Dongfang Chen

H

Hongrui Zhang

X

Xianzhe Chen

X

Xiaoxi Huang

I

Irina Baraban

S

Sreekeerthi Pamula

Rice Advanced Materials Institute Rice University Houston Texas USA

C

Cedric J. G. Meyers

R

R. Ramesh

K

Kathleen Coleman

B

Brendan Hanrahan

U.S. Army Combat Capabilities Development Command-Army Research Laboratory 2 , Adelphi, Maryland 20783,

J

James M. LeBeau

J

Jonathan E. Spanier

Department of Mechanical Engineering and Mechanics, Drexel University

L

Lane W. Martin

Rice Advanced Materials Institute