标题: | 铁酸铋极化工程 Engineering the Ferroelectricity in BiFeO3 |
作者: | 黄彦霖 朱英豪 Huang, Yen-Lin Chu, Ying-Hao 材料科学与工程学系所 |
关键字: | 铁电;薄膜;雷射脉冲沈积;超导;水裂解;筹璧工程;Ferroelectricity;Thin film;PLD;superconductivity;water splitting;domain wall;MIM |
公开日期: | 2017 |
摘要: | BiFeO3 是目前能表现出两种铁素体排列的唯一单相材料 - 高于室温的反铁磁性 和铁电性 [1]。此外,它还显示出稳定的电磁耦合 - 由 Dzyaloshinskii-Moriya (DM)相互作用 述的反铁磁自旋结构中的反对称交换引起的弱铁磁性。由于 这种优越的性能,BiFeO3 已成为多层次社会中最受欢迎和研究的材料[2] [3] [4] [5]。因此,不可避免地,控制和理解 BiFeO3 中的铁电是这一领域的关键问题。 在本论文中,我将重点介绍 BiFeO3 薄膜中铁电性的工程,并了解以下三个主要 现象背后的基本物理 - 铁电与超导之间的接近效应,铁电畴壁引起的异常微波 吸收和铁电的作用在分水过程中发挥作用。本论文的第一部分回顾了背景知识和 历史,为读者 供了一个全面的了解,以便在以下章节中对内容有清晰的认识。 我将首先介绍铁质订单参数,铁结构域和域墙,以及域墙工程。本论文的第二部 分致力于研究 YBa2Cu3O7-x 中各向异性超导体的周期性多铁磁畴图案,包括 109 °和 71°[6]型。 YBa2Cu3O7-x 中的各向异性超导性可以在 109°和 71°域上进 行观察。本论文第三部分将讨论通过微波阻抗显微镜探测的BiFeO3 71°域的异 常微波吸收。在这部分中,我将探讨微波频率范围内 BiFeO3 的畴壁运动与空间 分辨率,阐明了畴壁的贡献。最后,我将展示铁电工程在水分解过程中的应用[7]。 这部分将着重于通过控制 BiFeO3 的自发极化方向和小面来了解铁电体在水分离 过程中的作用。 BiFeO3 is the only single-phase material that exhibits two ferroic orderings – antiferromagnetism and ferroelectricity above room temperature[1]. Moreover, it also shows a robust magnetoelectric coupling – a weak ferromagnetism induced by the antisymmetric exchange in the antiferromagnetic spin structure described by the Dzyaloshinskii-Moriya (DM) interaction. Due to this superior property, BiFeO3 has become the most popular and studied material in multiferroic society[2][3][4][5]. Thus, inevitably, controlling and understanding the ferroelectricity in BiFeO3 are the crucial issues in this field. In this dissertation, I will focus on the engineering of ferroelectricity in BiFeO3 thin films and understanding the fundamental physics behind the following three major phenomena – the proximity effect between ferroelectricity and superconductivity, anomalous microwave absorption induced by ferroelectric domain wall, and the role of ferroelectricity plays in water splitting process. The first part of this dissertation reviews the background history and knowledge that will provide a comprehensive picture for readers to have clear ideas of the contents in the following chapters. I will begin with the introduction of ferroic order parameters, ferroic domain and domain wall, and domain wall engineering. The second part of this dissertation devotes to the study of anisotropic superconductivity in YBa2Cu3O7−x induced by periodic multiferroic domain patterns, including 109◦ and 71◦[6] patterns. The anisotropic superconductivity can be observed in YBa2Cu3O7−x on both 109◦ and 71◦ domain patterns. The third part of this dissertation will discuss the anomalous microwave absorption at 71 domain pattern of BiFeO3 probed by microwave impedance microscopy. In this part, I will explore the domain wall motion of BiFeO3 in microwave frequency regime with spatial resolution, which elucidates the contribution from the domain wall. Finally, I will demonstrate the application of ferroelectricity engineering in water splitting process[7]. This part will focus on understanding the role of ferroelectricity plays in the water splitting process via controlling the spontaneous polarization direction and the facets of BiFeO3 . |
URI: | http://etd.lib.nctu.edu.tw/cdrfb3/record/nctu/#GT070281507 http://hdl.handle.net/11536/141748 |
显示于类别: | Thesis |