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An electro-thermal approach to dielectric breakdown in solids: application to crystalline polymer insulators

机译:固体中电击穿的电热方法:在结晶聚合物绝缘子中的应用

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摘要

A dielectric breakdown model, linked to appearance of a singularity, has been developed and applied to a high purity alkane type (n-C36H74) insulator. The polymer material, which exhibits low defect / trap density, represents the single-crystalline iso-electronic analog to polyethylene. At high fields, and based on experimental findings, carrier transport is mediated by delocalized states in the conduction and valence band, respectively. Field induced impact ionization and carrier multiplication are triggered by hot carrier photoinjection above a critical field magnitude of 0.8 MV for holes and 1.26 MV for electrons, in accord with the band model. Associated critical sample thickness values have been estimated. The related electrical properties have been explored on the basis of the electrothermal heat balance equation. The non-linear differential equation has been solved numerically, with appropriate thermo-physical materials and carrier transport parameters, considering the dielectric breakdown phenomenon as a singularity. It leads to thermal run-away as a consequence of strong positive electro-thermal feedback, under conditions of initial transient behavior. Required thermo-physical parameters are attributed to and explain filamentary charge transport. The temporal evolution of temperature and current in the conducting filament during the breakdown event exhibits a time scale up to the microsecond range. The dynamic properties of the phenomenon are strongly affected by heat transfer from the conducting section into the surrounding nonconducting material, as well as the temporal characteristics of the initial trigger conditions.
机译:已经开发了与奇异外观相关的介电击穿模型,并将其应用于高纯度烷烃型(n-C36H74)绝缘子。表现出低缺陷/陷阱密度的聚合物材料代表了聚乙烯的单晶等电子类似物。在高场,并基于实验结果,载流子传输分别由导带和价带中的离域态介导。根据能带模型,通过热载流子光注入,在高于空穴的0.8 MV和对于电子为1.26 MV的临界场强度以上,会引发场感应的碰撞电离和载流子倍增。相关的临界样品厚度值已经估算。在电热热平衡方程的基础上探索了相关的电性能。考虑到介电击穿现象为奇点,已使用适当的热物理材料和载流子传输参数对非线性微分方程进行了数值求解。在初始瞬态行为的条件下,由于强烈的正电热反馈而导致热失控。所需的热物理参数归因于并解释了丝状电荷的传输。在击穿事件期间,导电丝中温度和电流的时间演变表现出直至微秒范围的时间标度。现象的动态特性受到从导电部分到周围非导电材料的热传递以及初始触发条件的时间特性的强烈影响。

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