Guy Joseph G M, Cochard Charlotte, Aguado-Puente Pablo, Soergel Elisabeth, Whatmore Roger W, Conroy Michele, Moore Kalani, Courtney Eileen, Harvey Alan, Bangert Ursel, Kumar Amit, McQuaid Raymond G P, Gregg J Marty
School of Mathematics and Physics, Queen's University Belfast, Belfast, BT7 1NN, UK.
School of Science and Engineering, University of Dundee, Nethergate, Dundee, DD1 4HN, UK.
Adv Mater. 2021 Apr;33(16):e2008068. doi: 10.1002/adma.202008068. Epub 2021 Mar 18.
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles with external electric fields. Favorably oriented dipolar regions (domains) grow at the expense of those in unfavorable orientations and this is manifested in a predictable field-induced motion of the walls that separate one domain from the next. Here, the discovery that specific charged 90°domain walls in copper-chlorine boracite move in the opposite direction to that expected, increasing the size of the domain in which polarization is anti-aligned with the applied field, is reported. Polarization-field (P-E) hysteresis loops, inferred from optical imaging, show negative gradients and non-transient negative capacitance, throughout the P-E cycle. Switching currents (generated by the relative motion between domain walls and sensing electrodes) confirm this, insofar as their signs are opposite to those expected conventionally. For any given bias, the integrated switching charge due to this anomalous wall motion is directly proportional to time, indicating that the magnitude of the negative capacitance component should be inversely related to frequency. This passes Jonscher's test for the misinterpretation of positive inductance and gives confidence that field-induced motion of these specific charged domain walls generates a measurable negative capacitance contribution to the overall dielectric response.
在切换过程中,铁电体的微观结构通常会调整,使内部偶极子与外部电场对齐。取向有利的偶极区域(畴)会以取向不利的区域为代价生长,这表现为分隔相邻畴的畴壁在电场诱导下发生可预测的移动。在此,报告了一项发现:氯硼酸铜中的特定带电90°畴壁的移动方向与预期相反,使得极化与外加电场反平行排列的畴的尺寸增大。通过光学成像推断出的极化-电场(P-E)滞后回线在整个P-E循环中显示出负梯度和非瞬态负电容。开关电流(由畴壁与传感电极之间的相对运动产生)证实了这一点,因为其符号与传统预期相反。对于任何给定的偏置,由于这种异常的畴壁运动而产生的积分开关电荷与时间成正比,这表明负电容分量的大小应与频率成反比。这通过了琼舍尔对正电感误判的测试,并让人相信这些特定带电畴壁的电场诱导运动会对整体介电响应产生可测量的负电容贡献。