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A high-current light-ion injector for tandem accelerators
G W W Quax1, A Gottdang, D J W Mous
1High Voltage Engineering Europa B.V., P.O. Box 99, 3800 AB Amersfoort, The Netherlands.
A new dual-source injector for tandem accelerators efficiently produces negative ion beams of hydrogen (H), deuterium (D), and helium (He). This system achieves high currents for H(-) and D(-) and optimizes He(-) production for accelerator applications.
Area of Science:
- Accelerator Physics
- Plasma Physics
- Ion Source Technology
Background:
- Tandem accelerators require reliable sources for negative ion beams, including hydrogen (H), deuterium (D), and helium (He).
- Efficient production of these negative ions is crucial for various applications, such as fusion research and materials science.
- Existing ion source technologies face challenges in achieving high currents and optimizing yields for specific ion species.
Purpose of the Study:
- To develop and construct a dual-source injector system for tandem accelerators.
- To achieve high negative ion currents for H, D, and He.
- To optimize the production and transport of He(-) ions for enhanced accelerator performance.
Main Methods:
- Designed and built a dual-source injector featuring a central vacuum enclosure housing two multicusp ion sources.
- Employed direct negative extraction for H(-) and D(-) ion production.
- Utilized differentially pumped vacuum sections and optimized extraction geometry for He(-) production and transport, including charge exchange optimization.
Main Results:
- Achieved several milliamperes (mA) of H(-) and D(-) beam currents via direct negative extraction.
- Optimized He(-) yield by managing space charge effects and minimizing neutralization losses during charge exchange.
- Obtained over 10 mA of He(+) and approximately 50 microamperes (µA) of He(-) using lithium (Li) as a charge exchange medium, with potential for over 100 µA using sodium (Na).
Conclusions:
- The developed dual-source injector is a capable system for producing high-current negative ion beams of H, D, and He.
- The optimization strategies for He(-) production, including vacuum pumping and charge exchange, significantly enhance ion yield.
- The system demonstrates potential for further improvements, particularly for He(-) currents, by exploring different charge exchange media.
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