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Time-Resolved Radiation-Induced Conductivity of Polyimide and Its Description Using the Multiple Trapping Formalism

机译:时间分辨辐射诱导的聚酰亚胺电导率及其多重陷阱形式化的描述

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摘要

Polymer dielectrics subjected to intense radiation fluxes exhibit a radiation-induced conductivity (RIC). Polyimide is a good dielectric with excellent mechanical and thermal properties featuring high radiation resistance currently widely used in the spacecraft industry. Its RIC has been extensively studied in several laboratories. The purpose of the present study is to make a direct measurement of the RIC for both pulsed and continuous irradiation using a current sensing technique, which is contrary to the indirect method employing a surface-potential decay technique that is now preferred by spacecraft charging engineers. Our experiments are done in a small-signal regime excluding any recombination and dose effects. In combination with existing computer codes, we managed to develop further the conventional multiple trapping formalism and the RIC theory based on it. The main idea is to supplement an exponential trap distribution responsible for a dominant dispersive carrier transport in polymers with a small concentration of inherent deep traps which may or may not have an energy distribution. In line with this reasoning, we propose a tentative set of RIC model parameters for polyimide that accounts for the observed experimental data. The findings and their implications are discussed in a broad context of previous studies.
机译:经受强辐射通量的聚合物电介质表现出辐射诱导的电导率(RIC)。聚酰亚胺是一种良好的电介质,具有出色的机械和热性能,具有目前在航天器工业中广泛使用的高抗辐射性。其RIC已在多个实验室中进行了广泛的研究。本研究的目的是使用电流感测技术对脉冲和连续照射进行RIC的直接测量,这与采用表面电势衰减技术的间接方法相反,该方法现在已被航天器充电工程师首选。我们的实验是在小信号方案下完成的,不包括任何重组和剂量效应。结合现有的计算机代码,我们设法进一步发展了传统的多重诱捕形式主义和基于它的RIC理论。主要思想是用少量固有的深陷阱(可能具有或不具有能量分布)来补充负责聚合物中占主导地位的分散载流子传输的指数陷阱分布。根据这种推理,我们为聚酰亚胺提出了一组暂定的RIC模型参数,以说明观察到的实验数据。在先前的研究中广泛讨论了这些发现及其含义。

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