Dey Ashis, De Sukanta, De Amitabha, De S K
Department of Materials Science, Indian Association for the Cultivation of Science, Jadavpur, Kolkata 700032, India.
J Nanosci Nanotechnol. 2006 May;6(5):1427-36. doi: 10.1166/jnn.2006.193.
Complex impedance and dielectric permittivity of titania-polypyrrole nanocomposites have been investigated as a function of frequency and temperature at different compositions. A very large dielectric constant of about 13,000 at room temperature has been observed. The colossal dielectric constant is mainly dominated by interfacial polarization due to Maxwell-Wagner relaxation effect. Two completely separate groups of dielectric relaxation have been observed. The low frequency dielectric relaxation arises from surface defect states of titania nanoparticles. The broad peak at high frequency region is attributed to Maxwell-Wagner type polarization originating from the inhomogeneous property of nanocomposite. An abrupt change in grain boundary conductivity and dielectric relaxation associated with titania was observed at around 150 K. Anomalous behavior in conductivity and dielectric relaxation is qualitatively explained by band tail structure of titania nanoparticle.
已研究了不同组成的二氧化钛-聚吡咯纳米复合材料的复阻抗和介电常数随频率和温度的变化关系。在室温下观察到约13000的非常大的介电常数。巨大的介电常数主要由麦克斯韦-瓦格纳弛豫效应引起的界面极化主导。观察到两组完全分开的介电弛豫。低频介电弛豫源于二氧化钛纳米颗粒的表面缺陷态。高频区域的宽峰归因于源自纳米复合材料不均匀性质的麦克斯韦-瓦格纳型极化。在约150 K时观察到与二氧化钛相关的晶界电导率和介电弛豫的突然变化。二氧化钛纳米颗粒的能带尾结构定性地解释了电导率和介电弛豫中的异常行为。