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具有强反铁磁性的单晶 BiFeO 纳米板。

Single-Crystal BiFeO Nanoplates with Robust Antiferromagnetism.

机构信息

State Key Laboratory of Silicon Materials, School of Materials Science and Engineering, Cyrus Tang Center for Sensor Materials and Application, Zhejiang University , Hangzhou 310027, China.

Key Laboratory of Advanced Technique & Preparation for Renewable Energy Materials, Ministry of Education, Yunnan Normal University , Kunming 650500, China.

出版信息

ACS Appl Mater Interfaces. 2018 Feb 14;10(6):5785-5792. doi: 10.1021/acsami.7b17449. Epub 2018 Feb 5.

Abstract

Freestanding and single-crystal BiFeO (BFO) nanoplates have been successfully synthesized by a fluoride ion-assisted hydrothermal method, and the thickness of the nanoplates can be effectively tailored from 80 to 380 nm by the concentration of fluoride ions. It is revealed that BFO nanoplates grew via an oriented attachment of layer by layer, giving rise to the formation of the inner interface within the nanoplates. In particular, antiferromagnetic (AFM) phase-transition temperature (Néel temperature, T) of the BFO nanoplates is significantly enhanced from typical 370 to ∼512 °C, whereas the Curie temperature (T) of the BFO nanoplates is determined to be ∼830 °C, in good agreement with a bulk value. The combination of scanning transmission electron microscopy, electron energy loss spectroscopy, and the first-principle calculations reveals that the interfacial tensile strain remarkably improves the stability of AFM ordering, accounting for the significant enhancement in T of BFO plates. Correspondingly, the tensile strain induced the polarization and oxygen octahedral tilting has been observed near the interface. The findings presented here suggest that single-crystal BFO nanoplate is an ideal system for exploring an intrinsic magnetoelectric property, where a tensile strain can be a very promising approach to tailor AFM ordering and polarization rotation for an enhanced coupling effect.

摘要

无支撑的单晶 BiFeO(BFO)纳米板已经通过氟离子辅助水热法成功合成,通过氟离子浓度可以有效地将纳米板的厚度从 80nm 调至 380nm。研究表明,BFO 纳米板通过逐层的定向附着生长,导致在纳米板内部形成了内界面。特别地,BFO 纳米板的反铁磁(AFM)相变温度(奈尔温度,T)从典型的 370°C 显著提高到约 512°C,而 BFO 纳米板的居里温度(T)被确定为约 830°C,与体相值吻合较好。扫描透射电子显微镜、电子能量损失谱以及第一性原理计算的结合表明,界面拉伸应变显著提高了 AFM 有序的稳定性,这解释了 BFO 板 T 的显著提高。相应地,在界面附近观察到拉伸应变诱导的极化和氧八面体倾斜。本研究表明,单晶 BFO 纳米板是探索本征磁电性能的理想体系,其中拉伸应变可能是一种很有前途的方法,可以调整 AFM 有序和极化旋转,以增强耦合效应。

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