Enhancing magnetoelectric coupling in Ni/PMN-PZT/Ni laminates by Ni electroplating

R Rokhyeon Kim (School of Materials Science and Engineering, Yeungnam University 1 , Gyeongsan 38541,) D Donggeon Baek (School of Materials Science and Engineering, Yeungnam University 1 , Gyeongsan 38541,) B Burcu Dursun (Department of Materials Science and Engineering and Materials Research Institute, The Pennsylvania State University 2 , University Park, Pennsylvania 16802,) D Dayeong Hur (School of Materials Science and Engineering, Yeungnam University 1 , Gyeongsan 38541,) K Kae Nakamura (Department of Physiology, Kansai Medical University) H Hyunseok Song (School of Materials Science and Engineering, Yeungnam University 1 , Gyeongsan 38541,) J Jung Min Park H Ho-Yong Lee (Department of Advanced Materials Engineering, Sunmoon University 4 , Asan 31460,) S Susan Trolier-McKinstry J Jungho Ryu

Abstract

Adhesive-free 2-2 structured Ni/Pb(Mg1/3Nb2/3)O3–PbZrTiO3/Ni laminates were realized by directly electroplating magnetostrictive Ni onto [011]-oriented Pb(Mg1/3Nb2/3)O3-Pb(Zr,Ti)O3 (PMN-PZT) single crystals for operation in the d32 mode, thereby maximizing interfacial bonding and suppressing viscoelastic coupling losses associated with polymer adhesive layers. Finite element analysis comparing the presence/absence of an interlayer, single crystal vs ceramic piezoelectrics, and variations in Ni thickness shows that removing a polymeric adhesive layer increases the induced piezoelectric potential by approximately 13% that single crystals deliver ∼1.3 times higher output than ceramics at identical Ni thickness, and that the response grows, then saturates with Ni thickness under the same excitation condition. Uniform polycrystalline Ni layers with soft magnetic characteristics and controlled thickness were obtained by direct Ni electroplating on PMN-PZT single crystals. Under off-resonance condition, the direct magnetoelectric voltage coefficient increases with Ni thickness and reaches 6.9 V/cm Oe at bias fields below 100 Oe. At the electromechanical resonance, the coefficient is strongly amplified to 1419 V/cm Oe. These results indicate that combining direct Ni electroplating on 32 mode single crystals enhances interfacial stress transfer and magneto-electromechanical conversion, providing a scalable route to high magnetoelectric responses for sensitive magnetic field sensing, low-frequency magnetoelectric antennas, and other applications.

Article Details

Volume / Issue Vol. 128, Issue 3
Published January 19, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (10)

R

Rokhyeon Kim

School of Materials Science and Engineering, Yeungnam University 1 , Gyeongsan 38541,

D

Donggeon Baek

School of Materials Science and Engineering, Yeungnam University 1 , Gyeongsan 38541,

B

Burcu Dursun

Department of Materials Science and Engineering and Materials Research Institute, The Pennsylvania State University 2 , University Park, Pennsylvania 16802,

D

Dayeong Hur

School of Materials Science and Engineering, Yeungnam University 1 , Gyeongsan 38541,

K

Kae Nakamura

Department of Physiology, Kansai Medical University

H

Hyunseok Song

School of Materials Science and Engineering, Yeungnam University 1 , Gyeongsan 38541,

J

Jung Min Park

H

Ho-Yong Lee

Department of Advanced Materials Engineering, Sunmoon University 4 , Asan 31460,

S

Susan Trolier-McKinstry

J

Jungho Ryu