Spin relaxation rate for baryons in a thermal pion gas

IF 3.2 2区 物理与天体物理 Q2 PHYSICS, NUCLEAR
Yoshimasa Hidaka, Masaru Hongo, M. Stephanov, Ho-Ung Yee
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引用次数: 0

Abstract

We study the relaxation dynamics of the spin polarization of baryons (nucleon and Λ baryon), in a thermal pion gas as a simple model of the hadronic phase of the QCD plasma produced in relativistic heavy-ion collisions. For this purpose, we formulate the quantum kinetic theory for the spin density matrix of baryons in the leading order of the gradient expansion. Considering the baryon-pion elastic scattering processes as the dominant interaction between baryons and thermal pions, we compute the spin relaxation rate of nucleons and Λ baryons in a pion gas up to temperature 200 MeV. In the case of nucleons, we evaluate the spin relaxation rate in the s-channel resonance approximation, based on the known experimental data on Δ resonances. We also estimate the spin relaxation rate for Λ baryons, based on experimental inputs and theoretical models for the low-energy Λπ scattering, including the chiral perturbation theory. Published by the American Physical Society 2024

Abstract Image

热先驱气体中重子的自旋弛豫率
我们研究了热先驱气体中重子(核子和Λ重子)自旋极化的弛豫动力学,热先驱气体是相对论重离子碰撞中产生的 QCD 等离子体强子阶段的一个简单模型。为此,我们在梯度扩展的前沿阶提出了重子自旋密度矩阵的量子动力学理论。考虑到重子-小离子弹性散射过程是重子和热小离子之间的主要相互作用,我们计算了温度高达 200 MeV 的先驱气体中核子和Λ重子的自旋弛豫率。在核子的情况下,我们根据已知的 Δ 共振实验数据,评估了 s 道共振近似的自旋弛豫率。我们还根据低能Λπ散射的实验数据和理论模型,包括手性扰动理论,估算了Λ重子的自旋弛豫率。 美国物理学会出版 2024
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来源期刊
Physical Review C
Physical Review C PHYSICS, NUCLEAR-
CiteScore
5.80
自引率
35.50%
发文量
863
期刊介绍: Physical Review C (PRC) is a leading journal in theoretical and experimental nuclear physics, publishing more than two-thirds of the research literature in the field. PRC covers experimental and theoretical results in all aspects of nuclear physics, including: Nucleon-nucleon interaction, few-body systems Nuclear structure Nuclear reactions Relativistic nuclear collisions Hadronic physics and QCD Electroweak interaction, symmetries Nuclear astrophysics
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