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室温多铁性 0.85BiTiFeMgO-0.15CaTiO 薄膜中畴的多场控制。

Multifield Control of Domains in a Room-Temperature Multiferroic 0.85BiTiFeMgO-0.15CaTiO Thin Film.

机构信息

Shenzhen Key Laboratory of Nanobiomechanics , Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences , Shenzhen , Guangdong 518055 , China.

National Institute for Materials Science , 1-2-1 Sengen , Tsukuba , Ibaraki 305-0047 , Japan.

出版信息

ACS Appl Mater Interfaces. 2018 Jun 20;10(24):20712-20719. doi: 10.1021/acsami.8b05289. Epub 2018 Jun 12.

Abstract

Single-phase materials that combine electric polarization and magnetization are promising for applications in multifunctional sensors, information storage, spintronic devices, etc. Following the idea of a percolating network of magnetic ions (e.g., Fe) with strong superexchange interactions within a structural scaffold with a polar lattice, a solid solution thin film with perovskite structure at a morphotropic phase boundary with a high level of Fe atoms on the B site of perovskite structure is deposited to combine both ferroelectric and ferromagnetic ordering at room temperature with magnetoelectric coupling. In this work, a 0.85BiTiFeMgO-0.15CaTiO thin film has been deposited by pulsed laser deposition (PLD). Both the ferroelectricity and the magnetism were characterized at room temperature. Large polarization and a large piezoelectric effective coefficient d were obtained. Multifield coupling of the thin film has been characterized by scanning force microscopy. Ferroelectric domains and magnetic domains could be switched by magnetic field ( H), electric field ( E), mechanical force ( F), and, indicating that complex cross-coupling exists among the electric polarization, magnetic ordering and elastic deformation in 0.85BiTiFMgO-0.15CaTiO thin film at room temperature. This work also shows the possibility of writing information with electric field, magnetic field, and mechanical force and then reading data by magnetic field. We expect that this work will benefit information applications.

摘要

单相材料结合了电极化和磁化,有望应用于多功能传感器、信息存储、自旋电子器件等领域。受具有强超交换相互作用的磁性离子(例如 Fe)在具有极性晶格的结构支架中形成渗流网络这一思想的启发,在钙钛矿结构 B 位具有高浓度 Fe 原子的钙钛矿结构准同型相界处沉积了具有钙钛矿结构的固溶体薄膜,从而在室温下实现铁电和铁磁有序以及磁电耦合。在这项工作中,通过脉冲激光沉积(PLD)沉积了 0.85BiTiFeMgO-0.15CaTiO 薄膜。在室温下对其铁电性和磁性进行了表征。得到了较大的极化和较大的压电有效系数 d。通过扫描力显微镜对薄膜的多场耦合进行了表征。可以通过磁场( H)、电场( E)、机械力( F)来切换铁电畴和磁畴,表明在 0.85BiTiFMgO-0.15CaTiO 薄膜中,室温下电极化、磁有序和弹性变形之间存在复杂的交叉耦合。这项工作还表明了通过电场、磁场和机械力写入信息,然后通过磁场读取数据的可能性。我们期望这项工作将有益于信息应用。

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