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Optimal control of complex atomic quantum systems

机译:复杂原子量子系统的最优控制

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摘要

Quantum technologies will ultimately require manipulating many-body quantum systems with high precision. Cold atom experiments represent a stepping stone in that direction: a high degree of control has been achieved on systems of increasing complexity. However, this control is still sub-optimal. In many scenarios, achieving a fast transformation is crucial to fight against decoherence and imperfection effects. Optimal control theory is believed to be the ideal candidate to bridge the gap between early stage proof-of-principle demonstrations and experimental protocols suitable for practical applications. Indeed, it can engineer protocols at the quantum speed limit – the fastest achievable timescale of the transformation. Here, we demonstrate such potential by computing theoretically and verifying experimentally the optimal transformations in two very different interacting systems: the coherent manipulation of motional states of an atomic Bose-Einstein condensate and the crossing of a quantum phase transition in small systems of cold atoms in optical lattices. We also show that such processes are robust with respect to perturbations, including temperature and atom number fluctuations.
机译:量子技术最终将需要高精度地操纵多体量子系统。冷原子实验代表了该方向上的垫脚石:在日益复杂的系统上实现了高度控制。但是,此控件仍然不是最佳。在许多情况下,实现快速转换对于对抗退相干和瑕疵效应至关重要。最佳控制理论被认为是弥合早期原理验证演示和适合实际应用的实验方案之间差距的理想人选。实际上,它可以在量子速度极限(即最快可实现的转换时标)上设计协议。在这里,我们通过理论计算和实验验证两个非常不同的相互作用系统中的最佳转换来证明这种潜力:两个原子相互作用的相干操纵玻色-爱因斯坦凝聚物的运动态和在冷原子的小系统中的量子相变的交叉光学晶格。我们还表明,这样的过程相对于包括温度和原子数波动在内的扰动是鲁棒的。

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