UGC-DAE Consortium for Scientific Research, Indore 452001, India.
Department Methods for Characterization of Transport Phenomena in Energy Materials, Helmholtz-Zentrum Berlin für Materialien und Energie, Berlin 14109, Germany.
ACS Appl Mater Interfaces. 2023 Apr 12;15(14):18391-18401. doi: 10.1021/acsami.2c21948. Epub 2023 Apr 3.
Magnetoelastic and magnetoelectric coupling in the artificial multiferroic heterostructures facilitate valuable features for device applications such as magnetic field sensors and electric-write magnetic-read memory devices. In ferromagnetic/ferroelectric heterostructures, the intertwined physical properties can be manipulated by an external perturbation, such as an electric field, temperature, or a magnetic field. Here, we demonstrate the remote-controlled tunability of these effects under visible, coherent, and polarized light. The combined surface and bulk magnetic study of domain-correlated Ni/BaTiO heterostructures reveals that the system shows strong sensitivity to the light illumination via the combined effect of piezoelectricity, ferroelectric polarization, spin imbalance, magnetostriction, and magnetoelectric coupling. A well-defined ferroelastic domain structure is fully transferred from a ferroelectric substrate to the magnetostrictive layer via interface strain transfer. The visible light illumination is used to manipulate the original ferromagnetic microstructure by the light-induced domain wall motion in ferroelectric substrates and consequently the domain wall motion in the ferromagnetic layer. Our findings mimic the attractive remote-controlled ferroelectric random-access memory write and magnetic random-access memory read application scenarios, hence facilitating a perspective for room temperature spintronic device applications.
人工多铁异质结构中的磁弹和磁电耦合为器件应用提供了有价值的特性,例如磁场传感器和电写入磁读取存储器件。在铁磁/铁电异质结构中,通过外部扰动,如电场、温度或磁场,可以操纵交织的物理性质。在这里,我们展示了在可见光、相干和偏振光下这些效应的远程可控可调性。对与畴相关的 Ni/BaTiO 异质结构的表面和体磁性的综合研究表明,该系统通过压电效应、铁电极化、自旋不平衡、磁致伸缩和磁电耦合的综合效应,对光照射表现出很强的敏感性。通过界面应变传递,完全将铁电体衬底的铁弹性畴结构转移到磁致伸缩层。可见光照射用于通过铁电体衬底中的光诱导畴壁运动以及铁磁层中的畴壁运动来操纵原始的铁磁微结构。我们的发现模拟了有吸引力的远程控制铁电随机存取存储器写入和磁随机存取存储器读取应用场景,从而为室温自旋电子器件应用提供了一种视角。