Ʌ-Hypernuclear States as Dihadronic Molecules

IF 0.6 Q4 NUCLEAR SCIENCE & TECHNOLOGY
A. Jahanshir
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引用次数: 0

Abstract

The study of exotic hypernuclei attracts a great deal of interest in nuclear physics. The reality of heavy hyperon hypernuclei is the subject of intense concern among theoreticians and experimenters in recent years. The core-hyperon model uses to explain abnormal nuclei spectra, recent observations of new exotic heavy hyperon hypernuclei cannot be explained or predicted by ordinary heavy core nuclei. These exotic hypernuclei states are a two-cluster bound states. We calculate the mass spectrum and constituent mass of particles in hypernuclei using the relativistic Schrödinger equation with molecular pseudoharmonic-type potential between particles inside the core and hyperon. Such calculations represent the interaction between the hyperon and the nuclei core. I review recent theoretical studies on the ground states and the excited states of hypernuclei bound states. Finally, we present explicit predictions of the exotic bound states based on the interactions obtained from quantum field theory and the projective unitary representation model. Studies have shown that by increasing the mass number of hyperon-core states,  the value of the constituent mass and energy eigenvalue of Ʌ-hypernucleus increases. Also, by growing and increasing the proton number in the (Ʌ-N) states the value of the constituent mass of Ʌ-hyperon increases.
Ʌ-Hypernuclear作为双强子分子的态
对奇异超核的研究引起了核物理学的极大兴趣。重超子超核的存在是近年来理论界和实验界高度关注的问题。核超子模型用于解释异常核谱,最近观测到的新的奇异重超子超核不能用普通重核来解释或预测。这些奇异的超核态是两个团簇束缚态。我们使用相对论性薛定谔方程计算了超核中粒子的质谱和组成质量,该方程具有核内粒子与超子之间的分子赝谐型势。这样的计算代表了超子和核芯之间的相互作用。我回顾了最近关于超核束缚态基态和激发态的理论研究。最后,基于量子场论和投影酉表示模型得到的相互作用,我们给出了奇异束缚态的显式预测。研究表明,随着超子核态质量个数的增加,Ʌ-超核的组成质量和能量本征值增加。此外,通过增加(Ʌ-N)态中的质子数,Ʌ-超子的组成质量值也会增加。
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来源期刊
Atom Indonesia
Atom Indonesia NUCLEAR SCIENCE & TECHNOLOGY-
CiteScore
1.00
自引率
0.00%
发文量
20
审稿时长
16 weeks
期刊介绍: The focus of Atom Indonesia is research and development in nuclear science and technology. The scope of this journal covers experimental and analytical research in nuclear science and technology. The topics include nuclear physics, reactor physics, radioactive waste, fuel element, radioisotopes, radiopharmacy, radiation, and neutron scattering, as well as their utilization in agriculture, industry, health, environment, energy, material science and technology, and related fields.
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