论文标题
Bose Polaron的生与死
Life and death of the Bose polaron
论文作者
论文摘要
光谱和干涉测量在提取量子多体系统的基本特性时相互补充。尽管光谱法提供了平衡能量的精确测量,但干涉法可以阐明系统的动力学演化。对于浸入骨介质中的杂质,两者对于理解Bose Polaron的准粒子物理学同样重要。在这里,我们将干涉和光谱时间尺度与杂质动力学和polaron寿命的基本动力学态度进行了比较,突出了干涉方法清楚地解析polaron动力学的能力。特别是,在强相互作用处的相干幅度的干涉测量显示,在大排斥相互作用强度下,量子动力学比单位性更快。这些观察结果与短期理论预测(包括连续体和有吸引力的极化分支)非常吻合。在更长的时间内,可以获得包括两个分支在内的多体理论预测的定性协议。此外,从观察到的相速度的干涉测量值中提取偏振子能量,这与先前的光谱速度相一致,从弱到较强的有吸引力的相互作用。最后,相位的演化允许测量能量平衡时间尺度,描述了相位速度与极性能量的初始方法。从理论上讲,这表明这在通用动力学的方向范围内,揭示了向极性形成的快速初始演变。我们的结果给出了管理Bose Polaron的多体物理学的全面图片,因此验证了准粒子框架以进行进一步研究。
Spectroscopic and interferometric measurements complement each other in extracting the fundamental properties of quantum many-body systems. While spectroscopy provides precise measurements of equilibrated energies, interferometry can elucidate the dynamical evolution of the system. For an impurity immersed in a bosonic medium, both are equally important for understanding the quasiparticle physics of the Bose polaron. Here, we compare the interferometric and spectroscopic timescales to the underlying dynamical regimes of the impurity dynamics and the polaron lifetime, highlighting the capability of the interferometric approach to clearly resolve polaron dynamics. In particular, interferometric measurements of the coherence amplitude at strong interactions reveal faster quantum dynamics at large repulsive interaction strengths than at unitarity. These observations are in excellent agreement with a short-time theoretical prediction including both the continuum and the attractive polaron branch. For longer times, qualitative agreement with a many-body theoretical prediction which includes both branches is obtained. Moreover, the polaron energy is extracted from interferometric measurements of the observed phase velocity in agreement with previous spectroscopic results from weak to strong attractive interactions. Finally, the phase evolution allows for the measurement of an energetic equilibration timescale, describing the initial approach of the phase velocity to the polaron energy. Theoretically, this is shown to lie within the regime of universal dynamics revealing a fast initial evolution towards the formation of polarons. Our results give a comprehensive picture of the many-body physics governing the Bose polaron and thus validates the quasiparticle framework for further studies.