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First-Order Chiral Phase Transition in High-Energy Collisions: Can Nucleation Prevent Spinodal Decomposition?

机译:高能碰撞中的一阶手性相变:成核作用可防止旋节线分解吗?

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摘要

We discuss homogeneous nucleation in a first-order chiral phase transition within an effective field theory approach to low-energy QCD. Exact decay rates and bubble profiles are obtained numerically and compared to analytic results obtained with the thin-wall approximation. The thin-wall approximation overestimates the nucleation rate for any degree of supercooling. The time scale for critical thermal fluctuations is calculated and compared to typical expansion times for high-energy hadronic or heavy-ion collisions. We find that significant supercooling is possible, and the relevant mechanism for phase conversion might be that of spinodal decomposition. Some potential experimental signatures of supercooling, such as an increase in the correlation length of the scalar condensate, are also discussed.
机译:我们讨论低能QCD的有效场论方法内一阶手性相变中的均相成核。通过数字获得精确的衰减率和气泡轮廓,并将其与薄壁近似获得的分析结果进行比较。对于任何程度的过冷,薄壁近似都会高估成核速率。计算临界热波动的时间尺度,并将其与高能强子或重离子碰撞的典型膨胀时间进行比较。我们发现明显的过冷是可能的,而相变的相关机理可能是旋节线分解。还讨论了一些过冷的潜在实验特征,例如标量冷凝物相关长度的增加。

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