Hoffmann Michael, Ravindran Prasanna Venkatesan, Khan Asif Islam
NaMLab gGmbH/TU Dresden, 01187 Dresden, Germany.
School of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.
Materials (Basel). 2019 Nov 13;12(22):3743. doi: 10.3390/ma12223743.
The Landau theory of phase transitions predicts the presence of a negative capacitance in ferroelectric materials based on a mean-field approach. While recent experimental results confirm this prediction, the microscopic origin of negative capacitance in ferroelectrics is often debated. This study provides a simple, physical explanation of the negative capacitance phenomenon-i.e., 'S'-shaped polarization vs. electric field curve-without having to invoke the Landau phenomenology. The discussion is inspired by pedagogical models of ferroelectricity as often presented in classic text-books such as the and by Charles Kittel, which are routinely used to describe the quintessential ferroelectric phenomena such as the Curie-Weiss law and the emergence of spontaneous polarization below the Curie temperature. The model presented herein is overly simplified and ignores many of the complex interactions in real ferroelectrics; however, this model reveals an important insight: The polarization catastrophe phenomenon that is required to describe the onset of ferroelectricity naturally leads to the thermodynamic instability that is negative capacitance. Considering the interaction of electric dipoles and saturation of the dipole moments at large local electric fields we derive the full 'S'-curve relating the ferroelectric polarization and the electric field, in qualitative agreement with Landau theory.
朗道相变理论基于平均场方法预测铁电材料中存在负电容。虽然最近的实验结果证实了这一预测,但铁电体中负电容的微观起源常常存在争议。本研究提供了一种对负电容现象的简单物理解释,即“S”形极化与电场曲线,而无需援引朗道唯象学。该讨论受到铁电教学模型的启发,这些模型常见于经典教科书,如查尔斯·基特尔所著的相关书籍,它们常被用于描述典型的铁电现象,如居里 - 外斯定律以及居里温度以下自发极化的出现。本文提出的模型过度简化,忽略了实际铁电体中的许多复杂相互作用;然而,该模型揭示了一个重要的见解:描述铁电体起始所需的极化灾难现象自然会导致负电容的热力学不稳定性。考虑到电偶极子的相互作用以及在大局部电场下偶极矩的饱和,我们推导出了将铁电极化与电场相关联的完整“S”曲线,与朗道理论定性一致。