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Probing the quantum vacuum with an artificial atom in front of a mirror

机译:在镜子前用人造原子探测量子真空

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Quantum fluctuations of the vacuum are both a surprising and fundamental phenomenon of nature. Understood as virtual photons, they still have a very real impact, for instance, in the Casimir effects and the lifetimes of atoms. Engineering vacuum fluctuations is therefore becoming increasingly important to emerging technologies. Here, we shape vacuum fluctuations using a superconducting circuit analogue of a mirror, creating regions in space where they are suppressed. Moving an artificial atom through these regions and measuring the spontaneous emission lifetime of the atom provides us with the spectral density of the vacuum fluctuations. Using the paradigm of waveguide quantum electrodynamics, we significantly improve over previous studies of the interaction of an atom with its mirror image, observing a spectral density as low as 0.02 quanta, a factor of 50 below the mirrorless result. This demonstrates that we can hide the atom from the vacuum, even though it is exposed in free space.
机译:真空的量子波动既是自然界中令人惊讶的基本现象。它们被理解为虚拟光子,例如在卡西米尔效应和原子的寿命方面仍然具有非常真实的影响。因此,工程真空波动对新兴技术变得越来越重要。在这里,我们使用反射镜的超导电路模拟来塑造真空波动,从而在空间中形成被抑制的区域。将人造原子移动通过这些区域并测量原子的自发发射寿命可为我们提供真空波动的光谱密度。使用波导量子电动力学的范式,我们比以往对原子与其镜像的相互作用的研究有了显着改善,观察到的光谱密度低至0.02量子,比无镜结果低50倍。这表明即使暴露在自由空间中,我们也可以将原子隐藏在真空中。

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