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Observation of the Phononic Lamb Shift with a Synthetic Vacuum

机译:合成真空下的声子羔羊位移观察

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In contrast to classical empty space, the quantum vacuum fundamentally alters the properties of embedded particles. This paradigm shift allows one to explain the discovery of the celebrated Lamb shift in the spectrum of the hydrogen atom. Here, we engineer a synthetic vacuum, building on the unique properties of ultracold atomic gas mixtures, offering the ability to switch between empty space and quantum vacuum. Using high-precision spectroscopy, we observe the phononic Lamb shift, an intriguing many-body effect originally conjectured in the context of solid-state physics. We find good agreement with theoretical predictions based on the Fr?hlich model. Our observations establish this experimental platform as a new tool for precision benchmarking of open theoretical challenges, especially in the regime of strong coupling between the particles and the quantum vacuum.
机译:与经典的空白空间相比,量子真空从根本上改变了嵌入粒子的性质。这一范式转变使人们可以解释氢原子光谱中著名的兰姆转变的发现。在这里,我们基于超冷原子气体混合物的独特特性设计了合成真空,提供了在空白空间和量子真空之间切换的能力。使用高精度光谱学,我们观察了声子兰姆频移,这是最初在固态物理学中推测出的一种有趣的多体效应。我们发现与基于Fr?hlich模型的理论预测有很好的一致性。我们的观察结果建立了这个实验平台,作为对未解决的理论挑战进行精确基准测试的新工具,尤其是在粒子与量子真空之间的强耦合状态下。

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