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Tailoring Organic/Inorganic Interface Trap States of Metal Oxide/Polyimide toward Improved Vacuum Surface Insulation

  • Xiong Yang
  • , Guangyu Sun
  • , Guangzhi Guo
  • , Fangzheng Zou
  • , Wenrui Li
  • , Ruhui Lian
  • , Haoyan Liu
  • , Chao Wang
  • , Haoxiang Zhao
  • , Wendong Li
  • , Baipeng Song
  • , Guanjun Zhang
  • Xi'an Jiaotong University
  • Swiss Federal Institute of Technology Lausanne

Research output: Contribution to journalArticlepeer-review

29 Scopus citations

Abstract

High-voltage and high-power devices are indispensable in spacecraft for outer space explorations, whose operations require aerospace materials with adequate vacuum surface insulation performance. Despite persistent attempts to fabricate such materials, current efforts are restricted to trial-and-error methods and a universal design guideline is missing. The present work proposes to improve the vacuum surface insulation by tailoring the surface trap state density and energy level of the metal oxides with varied bandgaps, using coating on a polyimide (PI) substrate, aiming for a more systematical workflow for the insulation material design. First-principle calculations and trap diagnostics are employed to evaluate the material properties and reveal the interplay between trap states and the flashover threshold, supported by dedicated analyses of the flashover voltage, secondary electron emission (SEE) from insulators, and surface charging behaviors. Experimental results suggest that the coated PI (i.e., CuO@PI, SrO@PI, MgO@PI, and Al2O3@PI) can effectively increase the trap density and alter the trap energy levels. Elevated trap density is demonstrated to always yield lower SEE. In addition, increasing shallow trap density accelerates surface charge dissipation, which is favorable for improving surface insulation. CuO@PI exhibits the most remarkable increase in shallow trap density, and accordingly, the highest flashover voltage is 42.5% higher than that of pristine PI. This study reveals the critical role played by surface trap states in flashover mitigation and offers a novel strategy to optimize the surface insulation of materials.

Original languageEnglish
Pages (from-to)40963-40974
Number of pages12
JournalACS Applied Materials and Interfaces
Volume15
Issue number34
DOIs
StatePublished - 30 Aug 2023

Keywords

  • nanocoating
  • secondary electron emission
  • surface charging
  • surface insulation
  • surface trap states
  • vacuum flashover

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