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Setting Limits on Supersymmetry Using Simplified Models
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ダブルヘビーバリオンの核融合のクォークレベルのアナログ
Marek Karliner1, Jonathan L Rosner2
1School of Physics and Astronomy, Raymond and Beverly Sackler Faculty of Exact Sciences, Tel Aviv University, Tel Aviv 69978, Israel.
Nature
|November 3, 2017
まとめ
重量クォークを含む核融合反応は可能であり,かなりのエネルギーを放出します. クォークの寿命が短いため 現在では実現不可能ですが この発見は素粒子物理学の研究に 新たな道を開きます
科学分野:
- 高エネルギー物理学
- 核物理学
- 粒子物理学
背景:
- 核融合は原子核の再編成によって エネルギーを放出します
- シャームクォークの間の強い結合エネルギーを明らかにしました シャームクォークは
研究 の 目的:
- 重量バリオンを含むクォーク再配置エクソサーミック反応を調査する.
- 重クォークの核融合における エネルギー放出の可能性を探るため
主な方法:
- クォーク相互作用と結合エネルギーの理論分析.
- 重バリオン融合とデュテリウム-トリチウム融合の間の類似性
主要な成果:
- 2つのLambda_cバリオンによるクォーク再配置融合反応が実証され,双重に魅せられたバリオンと中性子を生成し,12 MeVを放出しました.
- 底部クォークを含む類似の反応で,138 MeVのエネルギー放出を大幅に計算した.
結論:
- 重クォーク・バリオン融合は 理論的に可能な 熱外プロセスです
- 重量クォークの高結合エネルギーが このエネルギー放出を促します
- チャームとボトムクォークの寿命は短いので 実用的な応用は不可能です
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