论文标题

球形对称超新星模型中碰撞中微子风味不稳定性的演变

Evolution of collisional neutrino flavor instabilities in spherically symmetric supernova models

论文作者

Xiong, Zewei, Wu, Meng-Ru, Martínez-Pinedo, Gabriel, Fischer, Tobias, George, Manu, Lin, Chun-Yu, Johns, Lucas

论文摘要

我们在球形对称性中实现了多组和离散的中微子传输模型,该模型允许以自隔离的方式包括现实的碰撞率来模拟集体中微子振荡。我们利用基于战略参数重新制定的这种创新模型来研究最近提出的碰撞风味不稳定性是由$ν_e$和$ \barν_e$之间的不对称性和吸收率在核心collapse Supernova模拟中从不同阶段拍摄的四个不同静态背景的不对称性和吸收率引起的。我们的结果证实,如[Arxiv:2104.11369]所建议的,在SN积聚和核酸后阶段中,通常存在碰撞的不稳定性。但是,风味不稳定性的增长和运输只能被带有全球模拟的模型完全捕获,如这项工作中所做的那样。由于最小的成分触发了碰撞的不稳定性,我们发现风味振荡和运输主要影响(抗)中微子在其脱钩球周围的重量重顿风味,然后在自由流程方面的能量光谱上留下烙印。对于电子(抗)中微子,它们的性质几乎保持完整。我们还探索了由于中微子核子散射的破坏,人为地增强了发射和吸收,中微子真空混合以及不均匀的物质曲线,并讨论我们工作的含义。

We implement a multi-group and discrete-ordinate neutrino transport model in spherical symmetry which allows to simulate collective neutrino oscillations by including realistic collisional rates in a self-consistent way. We utilize this innovative model, based on strategic parameter rescaling, to study a recently proposed collisional flavor instability caused by the asymmetry of emission and absorption rates between $ν_e$ and $\barν_e$ for four different static backgrounds taken from different stages in a core-collapse supernova simulation. Our results confirm that collisional instabilities generally exist around the neutrinosphere during the SN accretion and post-accretion phase, as suggested by [arXiv:2104.11369]. However, the growth and transport of flavor instabilities can only be fully captured by models with global simulations as done in this work. With minimal ingredient to trigger collisional instabilities, we find that the flavor oscillations and transport mainly affect (anti)neutrinos of heavy lepton flavors around their decoupling sphere, which then leave imprints on their energy spectra in the free-streaming regime. For electron (anti)neutrinos, their properties remain nearly intact. We also explore various effects due to the decoherence from neutrino-nucleon scattering, artificially enhanced decoherence from emission and absorption, neutrino vacuum mixing, and inhomogeneous matter profile, and discuss the implication of our work.

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