Richert Ranko
School of Molecular Sciences, Arizona State University, Tempe, AZ 85287-1604, United States of America.
J Phys Condens Matter. 2017 Sep 13;29(36):363001. doi: 10.1088/1361-648X/aa7cc4. Epub 2017 Jun 30.
Dielectric relaxation measurements probe how the polarization of a material responds to the application of an external electric field, providing information on structure and dynamics of the sample. In the limit of small fields and thus linear response, such experiments reveal the properties of the material in the same thermodynamic state it would have in the absence of the external field. At sufficiently high fields, reversible changes in enthalpy and entropy of the system occur even at constant temperature, and these will in turn alter the polarization responses. The resulting nonlinear dielectric effects feature field induced suppressions (saturation) and enhancements (chemical effect) of the amplitudes, as well as time constant shifts towards faster (energy absorption) and slower (entropy reduction) dynamics. This review focuses on the effects of high electric fields that are reversible and observed at constant temperature for single component glass-forming liquids. The experimental challenges involved in nonlinear dielectric experiments, the approaches to separating and identifying the different sources of nonlinear behavior, and the current understanding of how high electric fields affect dielectric materials will be discussed. Covering studies from Debye's initial approach to the present state-of-the-art, it will be emphasized what insight can be gained from the nonlinear responses that are not available from dielectric relaxation results obtained in the linear regime.
介电弛豫测量探究材料的极化如何响应外部电场的施加,从而提供有关样品结构和动力学的信息。在小电场以及线性响应的极限情况下,此类实验揭示了材料在不存在外部电场时所处的相同热力学状态下的性质。在足够高的电场下,即使在恒定温度下,系统的焓和熵也会发生可逆变化,而这些变化又会反过来改变极化响应。由此产生的非线性介电效应表现为场致幅度抑制(饱和)和增强(化学效应),以及时间常数朝着更快(能量吸收)和更慢(熵减少)的动力学方向移动。本综述聚焦于在恒定温度下对单组分玻璃形成液体而言可逆的高电场效应。将讨论非线性介电实验中涉及的实验挑战、分离和识别不同非线性行为来源的方法,以及目前对高电场如何影响介电材料的理解。涵盖从德拜的初始方法到当前最先进水平的研究,将强调从非线性响应中可以获得哪些在线性区域获得的介电弛豫结果中无法获得的见解。