Intense Pulsed Light Thermal Treatment of Pb(Zr,Ti)O3/Metglas Heterostructured Films Resulting in Extreme Magnetoelectric Coupling of over 20 V cm−1 Oe−1

Author:

Palneedi Haribabu1,Patil Deepak Rajaram23,Priya Shashank1,Woo Kyoohee4,Ye Jiwon23,Woo Yu Mi5,Hwang Yun Sik6,Hwang Geon‐Tae7,Park Jung Hwan5,Ryu Jungho237ORCID

Affiliation:

1. Materials Research Institute/Department of Materials Science and Engineering Pennsylvania State University University Park PA 16802 USA

2. School of Materials Science and Engineering Yeungnam University Gyeongsan 38541 South Korea

3. Institute of Materials Technology Yeungnam University Daehak‐ro Gyeongsan 38541 South Korea

4. Nano‐Convergence Manufacturing Systems Research Division Korea Institute of Machinery and Materials (KIMM) Daejeon 34103 South Korea

5. Department of Mechanical Engineering (Department of Aeronautics Mechanical and Electronic Convergence Engineering) Kumoh National Institute of Technology 61 Daehak‐ro Gumi Gyeongbuk 39177 South Korea

6. Department of Mechanical Design Engineering Kumoh National Institute of Technology 61 Daehak-ro Gumi Gyeongbuk 39177 South Korea

7. Department of Materials Science and Engineering Pukyong National University Busan 42601 South Korea

Abstract

AbstractMagnetoelectric (ME) film composites consisting of piezoelectric and magnetostrictive materials are promising candidates for application in magnetic field sensors, energy harvesters, and ME antennas. Conventionally, high‐temperature annealing is required to crystallize piezoelectric films, restricting the use of heat‐sensitive magnetostrictive substrates that enhance ME coupling. Herein, a synergetic approach is demonstrated for fabricating ME film composites that combines aerosol deposition and instantaneous thermal treatment based on intense pulsed light (IPL) radiation to form piezoelectric Pb(Zr,Ti)O3 (PZT) thick films on an amorphous Metglas substrate. IPL rapidly anneals PZT films within a few milliseconds without damaging the underlying Metglas. To optimize the IPL irradiation conditions, the temperature distribution inside the PZT/Metglas film is determined using transient photothermal computational simulation. The PZT/Metglas films are annealed using different IPL pulse durations to determine the structure–property relationship. IPL treatment results in an enhanced crystallinity of the PZT, thus improving the dielectric, piezoelectric, and ME properties of the composite films. An ultrahigh off‐resonance ME coupling (≈20 V cm−1 Oe−1) is obtained for the PZT/Metglas film that is IPL annealed at a pulse width of 0.75 ms (an order of magnitude higher than that reported for other ME films), confirming the potential for next‐generation, miniaturized, and high‐performance ME devices.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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