4.8 Article

Strain Modulation of Perpendicular Magnetic Anisotropy in Wrinkle-Patterned (Co/Pt)5/BaTiO3 Magnetoelectric Heterostructures

Journal

ACS NANO
Volume 16, Issue 7, Pages 11291-11299

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c04754

Keywords

flexible; freestanding; magnetoelectric coupling; perpendicular magnetic anisotropy; wrinkle pattern

Funding

  1. National Key R&D Program of China [2021YFA1202200]
  2. National Natural Science Foundation of China [62131017, 91964109, 52002310, 62101423]
  3. China Postdoctoral Science Foundation [2020M673403, 2021T140537, 2021M692531]
  4. Innovation Capability Support Program of Shaanxi [2021TD-12]
  5. Fundamental Research Funds for the Central Universities [xtr072021001, xjh012020005, xzy012020003]
  6. Young Talent Fund of University Association for Science and Technology in Shaanxi [20200101]
  7. National 111 Project of China [B14040]

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This study presents a water-soluble method to prepare flexible magnetic heterostructures with periodic wrinkle patterns. High-quality ferroelectric membranes are successfully fabricated on flexible substrates, enabling controllable ferromagnetic resonance fields and magnetoelectric effects. The proposed ultraflexible wrinkle sample shows great potential for combining multiple magnetization tuning approaches, allowing it to potentially serve as a tunable high-density 3D storage prototype.
The rapid development of spintronics requires the devices to be flexible, to be used in wearable electronics, and controllable, to be used with magnetoelectric (ME) structures. However, the clamping effect inevitably leads to a decreased ME effect on the rigid substrate, and it remains challenging to directly prepare high-quality ferroelectric (FE) membranes on the widely used flexible substrate such as MICA or polyimide (PI). Here, periodic wrinkle -patterned flexible (Co/Pt)(5)/BaTiO3 (BTO) perpendicular magnetic anisotropy (PMA) heterostructures were prepared using the water-soluble method. The high-quality single-crystal BTO membrane ensures that intricate wrinkles do not fracture and a high ME coefficient is achievable. The transferred sample that is released from the clamping effect shows an enhanced ME effect in both in-plane and out-of-plane directions, with the ME coefficient reaching up to 68 Oe ?(-1). The ferromagnetic resonance (FMR) field of the flexible sample can be tuned by tensile strain up to 272 Oe. The finely controlled wrinkle shows periodic strain variations at peak and valley regions that switch the PMA magnetic domain motion as an effective control method. The proposed ultraflexible wrinkle sample shows great potential for combining multiple magnetization tuning approaches, allowing it to potentially serve as a tunable high-density 3D storage prototype.

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