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Quantum computing in optical microtraps based on the motional states of neutral atoms

机译:基于中性原子的运动态的光学微陷阱中的量子计算

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摘要

We investigate quantum computation with neutral atoms in optical microtraps where the qubit is implemented in the motional states of the atoms, i.e., in the two lowest vibrational states of each trap. The quantum gate operation is performed by adiabatically approaching two traps and allowing tunneling and cold collisions to take place. We demonstrate the capability of this scheme to realize a square root of swap gate, and address the problem of double occupation and excitation to other unwanted states. We expand the two-particle wave function in an orthonormal basis and analyze quantum correlations throughout the whole gate process. Fidelity of the gate operation is evaluated as a function of the degree of adiabaticity in moving the traps. Simulations are based on rubidium atoms in state-of-the-art optical microtraps with quantum gate realizations in the few tens of milliseconds duration range.
机译:我们研究了在光学微阱中用中性原子进行的量子计算,其中量子位是在原子的运动状态(即每个阱的两个最低振动状态)中实现的。量子门操作是通过绝热接近两个陷阱并允许隧穿和冷碰撞发生的。我们证明了该方案实现交换门平方根的能力,并解决了双重占领和激发到其他有害状态的问题。我们在正交基础上扩展两粒子波函数,并分析整个门过程中的量子相关性。门操作的保真度根据移动阱的绝热程度进行评估。模拟基于最先进的光学微阱中的atoms原子,量子阱实现在几十毫秒的持续时间范围内。

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