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A first look at Bottomonium melting via a stochastic potential

机译:首先通过随机电位熔化底矿

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A bstract We investigate the phenomenon of Bottomonium melting in a thermal quark-gluon plasma using three-dimensional stochastic simulations based on the concept of open-quantum systems. In this non-relativistic framework, introduced in [1], which makes close contact to the potentials derived in effective field theory, the $ boverline{b} $ system evolves unitarily under the incessant kicks by the constituents of the surrounding heat bath. In particular thermal fluctuations and the presence of a complex potential in the EFT are naturally related. An intricate interplay between state mixing and thermal excitations emerges as we show how non-thermal initial conditions of Bottomonium states evolve over time. We emphasize that the dynamics of these states gives us access to information beyond what is encoded in the thermal Bottomonium spectral functions. Assumptions underlying our approach and their limitations, as well as the refinements necessary to connect to experimental measurements under more realistic conditions are discussed.
机译:Bstract我们使用基于开放量子系统概念的三维随机模拟研究了热夸克 - 胶质等离子体中底矿熔化现象。在这种非相对论框架中,在[1]中介绍,这与有效场理论中的潜力密切接触,$ B overline {B} $ Systeme在周围热浴的成分上单一的不停踢在不停的踢球下进化。特别是热量波动和EFT中的复杂电位的存在是自然相关的。正如我们展示了底部态度随着时间的推移的非热初始条件如何发展的那样,出现了州混合和热激发之间的复杂相互作用。我们强调这些国家的动态使我们能够获得超出热底谱函数中的编码的信息。讨论了我们方法的假设及其局限性以及在更现实条件下连接到实验测量所需的改进。

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