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February 26, 2026Nanomaterials0 citationsOpen Access

Thermal-Assisted Field Emission Characteristics of Carbon Nanotubes and Application in Pulsed X-Ray Imaging

ZXZhiqiang XiaNational Center for Nanoscience and TechnologySFShichao FengWuhan Ship Development & Design InstituteYLYang LiuKunming University of Science and Technology

Key Points

  • The aim was to explore the thermal-assisted field emission properties of carbon nanotubes and assess their application in pulsed X-ray imaging.
  • Characterization of turn-on field strength and emission stability
  • Evaluation of pulse response characteristics in thermal-assisted mode
  • Comparison with conventional thermionic cathodes
  • X-ray imaging experiments to assess performance
  • Current fluctuations reduced to below 1% with thermal assistance
  • Enhanced emission stability with increased heating power
  • Achieved microsecond-scale pulse response with CNT cathodes
  • X-ray dose stability improved, facilitating clearer imaging at 100 μs
  • Successful visualization of rotating blades at 600 Hz during imaging

Abstract

Carbon nanotube (CNT) cathode materials exhibit excellent electron emission performance and have become a key research focus in the field of vacuum electronics. However, their practical applications are still restricted by challenges, including emission instability and ambiguity in temporal resolution capability. This work investigated the thermal-assisted field emission characteristics of CNT and their application in pulsed X-ray imaging. Systematic characterization of the turn-on field strength, emission stability, pulse response characteristics, and pulsed X-ray imaging performance demonstrated that the thermal-assisted operating mode reduced current fluctuations to below 1%. Increasing the heating power further enhanced emission stability and lowered the turn-on field strength. In thermal-assisted pulsed emission mode, CNT cathodes exhibited reduced power consumption compared to conventional thermionic cathodes and achieved microsecond-scale pulse response. Further X-ray imaging experiments confirmed that the X-ray dose generated by CNT in this operational mode exhibited higher stability, enabling 100 μs pulsed imaging and clear visualization of rotating blades operating at 600 Hz. This study validated the feasibility of CNT cathodes for high-speed X-ray imaging and could provide a reference for the development of advanced pulsed X-ray sources and related technologies.

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Cite This Study

Xia et al. (2026) studied this question.

synapsesocial.com/papers/699fe32295ddcd3a253e6b96https://doi.org/10.3390/nano16050282
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