Meier Dennis
Department of Materials, ETH Zürich, 8092 Switzerland.
J Phys Condens Matter. 2015 Nov 25;27(46):463003. doi: 10.1088/0953-8984/27/46/463003. Epub 2015 Nov 2.
During the last decade a wide variety of novel and fascinating correlation phenomena has been discovered at domain walls in multiferroic bulk systems, ranging from unusual electronic conductance to inseparably entangled spin and charge degrees of freedom. The domain walls represent quasi-2D functional objects that can be induced, positioned, and erased on demand, bearing considerable technological potential for future nanoelectronics. Most of the challenges that remain to be solved before turning related device paradigms into reality, however, still fall in the field of fundamental condensed matter physics and materials science. In this topical review seminal experimental findings gained on electric and magnetic domain walls in multiferroic bulk materials are addressed. A special focus is put on the physical properties that emerge at so-called charged domain walls and the added functionality that arises from coexisting magnetic order. The research presented in this review highlights that we are just entering a whole new world of intriguing nanoscale physics that is yet to be explored in all its details. The goal is to draw attention to the persistent challenges and identify future key directions for the research on functional domain walls in multiferroics.
在过去十年中,人们在多铁性体块材的畴壁处发现了各种各样新奇且迷人的关联现象,从异常的电子电导到自旋与电荷自由度的不可分割的纠缠。畴壁代表了准二维功能对象,可按需诱导、定位和擦除,对未来纳米电子学具有巨大的技术潜力。然而,在将相关器件范式变为现实之前,仍有待解决的大多数挑战仍属于基础凝聚态物理和材料科学领域。在这篇专题综述中,将探讨在多铁性体块材中关于电畴壁和磁畴壁所取得的开创性实验结果。特别关注在所谓的带电畴壁处出现的物理性质以及由共存磁序产生的附加功能。本综述中呈现的研究突出表明,我们刚刚进入一个全新的、充满趣味的纳米尺度物理世界,其所有细节仍有待探索。目标是引起人们对持续存在的挑战的关注,并确定多铁性体中功能畴壁研究的未来关键方向。