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Effect of Affinity Discontinuity on Heterojunction p-i-n Solar Cell Performance

DOI:10.1109/JPHOTOV.2019.2959954 期刊:IEEE Journal of Photovoltaics 出版年份:2020 更新时间:2025-09-16 10:30:52
摘要: We report the design, fabrication, and proof-of-concept characterization of an X-ray generator for improved X-ray absorption imaging that uses a nanostructured field emission cathode as the electron source and a microstructured transmission anode as the X-ray generating structure. Field emission cathodes consume less power, respond faster, and tolerate lower vacuum than the thermionic cathodes used in conventional X-ray generators. The use of a transmission anode, instead of a conventional reflection anode, allows filtering of the background radiation (bremsstrahlung) while allowing efficient generation of X-ray at lower voltages by exciting atomic shell transitions, resulting in emission of X-ray with narrow spectral linewidth for sharper imaging of biological tissue. The fabricated field emission cathode contains arrays of self-aligned and gated silicon field emitters. The field emission cathodes turn on at bias voltages as low as 25 V, and their gates transmit almost 100% of the electrons to the anode. The cathodes produce per-emitter electron currents in excess of 2 μA (current density >2 A/cm2) at a bias voltage of 80 V. A desktop rig is built to generate X-ray with a field emission cathode and transmission anode. Using the facility, we obtained X-ray absorption images of several objects. The images clearly show details under 500 μm in size, as well as soft tissue and fine bone structures without using contrast agents.
作者: Shuo Cheng,Frances Ann Hill,Eric Vincent Heubel,Luis Fernando Velásquez-García
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Investigating the design, fabrication, and characterization of an X-ray generator using a nanostructured field emission cathode and a microstructured transmission anode for sharper imaging of biological tissue without contrast agents.

A nanostructured silicon field emission cathode capable of low-voltage operation and high current emission with high gate transmission has been demonstrated. The proof-of-concept X-ray source built with the field emission cathode and a microstructured transmission anode generates radiation that allows clear imaging of low-Z materials, in particular of biological samples, without contrast agents. The spectrum analysis shows lower background radiation and emission of X-ray with narrow spectral linewidth.

The X-ray source is currently operated in pulsed mode with low duty cycle to avoid increasing the pressure inside the chamber, which can result in destruction of the cathode due to back ion bombardment. Proper cooling of the anode needs to be addressed for continuous operation.

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