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Evidence for Efimov quantum states in an ultracold gas of caesium atoms.

机译:铯原子超冷气体中Efimov量子态的证据。

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Systems of three interacting particles are notorious for their complex physical behaviour. A landmark theoretical result in few-body quantum physics is Efimov's prediction of a universal set of bound trimer states appearing for three identical bosons with a resonant two-body interaction. Counterintuitively, these states even exist in the absence of a corresponding two-body bound state. Since the formulation of Efimov's problem in the context of nuclear physics 35 years ago, it has attracted great interest in many areas of physics. However, the observation of Efimov quantum states has remained an elusive goal. Here we report the observation of an Efimov resonance in an ultracold gas of caesium atoms. The resonance occurs in the range of large negative two-body scattering lengths, arising from the coupling of three free atoms to an Efimov trimer. Experimentally, we observe its signature as a giant three-body recombination loss when the strength of the two-body interaction is varied. We also detect a minimum in the recombination loss for positive scattering lengths, indicating destructive interference of decay pathways. Our results confirm central theoretical predictions of Efimov physics and represent a starting point with which to explore the universal properties of resonantly interacting few-body systems. While Feshbach resonances have provided the key to control quantum-mechanical interactions on the two-body level, Efimov resonances connect ultracold matter to the world of few-body quantum phenomena.
机译:由三个相互作用的粒子组成的系统因其复杂的物理行为而臭名昭著。少数人体量子物理学的一个具有里程碑意义的理论结果是埃菲莫夫(Efimov)预测,在三个相同的玻色子之间会出现共振的两体相互作用,从而出现了一组三聚态的通用集合。违反直觉,这些状态甚至在没有对应的两体结合状态的情况下也存在。自从35年前在核物理学的背景下提出Efimov问题以来,它就引起了许多物理领域的极大兴趣。但是,观察Efimov量子态仍然是一个遥不可及的目标。在这里,我们报告在铯原子的超冷气体中观察到Efimov共振。共振发生在大的负两体散射长度范围内,这是由于三个自由原子与Efimov三聚体的偶联引起的。实验上,当两体相互作用的强度发生变化时,我们观察到它的标志是三体重组的巨大损失。我们还检测到正散射长度的最小重组损失,表明衰变途径的破坏性干扰。我们的结果证实了Efimov物理学的中心理论预测,并代表了探索共振相互作用的小体系统的普遍性质的起点。尽管Feshbach共振提供了在两体级上控制量子力学相互作用的关键,但Efimov共振将超冷物质连接到了少体量子现象的世界。

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