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Dynamics of Space Charge Polarization and Electrical Conduction in Low Alkali Boroaluminosilicate Glasses.

机译:低碱硼铝硅酸盐玻璃中空间电荷极化和电导的动力学。

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摘要

Low alkali boroaluminosilicate glasses are of tremendous interest for high temperature electronics primarily due to their superior high temperature dielectric properties and extraordinary energy densities. Therefore, evaluating factors causing electrical conduction in these materials is of great importance since it has direct correlation with the device reliability and performance. This research focuses on understanding dynamics of space charge polarization and mechanisms controlling electrical conduction in these glasses. Both DC and AC characterization techniques were developed to elucidate electronic and ionic conduction mechanisms under a variety of temperatures, electric field and frequency conditions. Ionic conduction and space charge polarization have been studied in low alkali glasses as a function of electric field and temperature by thermally stimulated depolarization and low frequency impedance spectroscopy. Moreover, due to the low alkali content in these glasses, it was possible to study the transport properties of alkaline earth ions in multicomponent silicate glasses. It was observed that the potential energy barrier height for ionic hopping was reduced at high electric field. Impedance spectroscopy and second harmonic generation microscopy techniques were applied to determine the thickness and electric field distribution across the cation depleted layer that was generated during the thermoelectric poling. Both of these measurements show that the depletion layer thickness depends on the poling conditions and the intrinsic breakdown strength of the material. In addition, a relationship between the charge and electric field distribution in the depletion layer was determined for a number of glasses with different alkali content. The high breakdown strength of these glasses facilitated the study of electronic conduction under fields greater than 108 V/m. Conduction under these high fields was investigated using high field thermally stimulated depolarization current measurements. The electrons participating in the high field conduction were generated in the depletion layer through Poole-Frenkel emission. This involves field-enhanced excitation of electrons from the trapped states to the conduction band of the glass. It is suggested that high field intrinsic breakdown in thin alkali free boroaluminosilicate glasses may occur when the conduction band gets populated by electrons emitted through Poole-Frenkel emission. Consequently breakdown can occur through an avalanche effect.
机译:低碱金属硼铝硅酸盐玻璃由于其优异的高温介电性能和非凡的能量密度而引起了高温电子学的巨大兴趣。因此,评估导致这些材料导电的因素非常重要,因为它与设备的可靠性和性能直接相关。这项研究的重点是了解空间电荷极化的动力学以及控制这些玻璃中电导通的机制。开发了直流和交流表征技术,以阐明在各种温度,电场和频率条件下的电子和离子传导机理。通过热激发去极化和低频阻抗谱研究了低碱玻璃中离子传导和空间电荷极化与电场和温度的关系。此外,由于这些玻璃中的碱含量低,因此有可能研究多组分硅酸盐玻璃中碱土金属离子的传输性能。可以看出,在高电场下,离子跳跃的势能垒高度降低了。应用了阻抗谱和二次谐波显微镜技术来确定在热电极化过程中产生的整个阳离子耗尽层的厚度和电场分布。这两个测量结果均表明耗尽层厚度取决于极化条件和材料的固有击穿强度。另外,对于许多碱含量不同的玻璃,确定了耗尽层中电荷与电场分布之间的关系。这些玻璃的高击穿强度有助于研究大于108 V / m的电场下的电子传导。使用高场热激励去极化电流测量研究了在这些高场下的导电性。通过Poole-Frenkel发射在耗尽层中产生了参与高场传导的电子。这涉及电子从俘获态到玻璃导带的场增强激发。有人提出,当导带由通过Poole-Frenkel发射发射的电子所占据时,薄的无碱硼铝硅酸盐玻璃中可能发生高场固有击穿。因此,击穿可能通过雪崩效应发生。

著录项

  • 作者

    Dash, Priyanka.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 168 p.
  • 总页数 168
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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