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Scaling the neutral-atom Rydberg gate quantum computer by collective encoding in holmium atoms

机译:通过钬原子中的集体编码来缩放中性rydberg门量子计算机

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We discuss a method for scaling a neutral-atom Rydberg gate quantum processor to a large number of qubits. Limits are derived showing that the number of qubits that can be directly connected by entangling gates with errors at the 10(-3) level using long-range Rydberg interactions between sites in an optical lattice, without mechanical motion or swap chains, is about 500 in two dimensions and 7500 in three dimensions. A scaling factor of 60 at a smaller number of sites can be obtained using collective register encoding in the hyperfine ground states of the rare-earth atom holmium. We present a detailed analysis of operation of the 60-qubit register in holmium. Combining a lattice of multiqubit ensembles with collective encoding results in a feasible design for a 1000-qubit fully connected quantum processor.
机译:我们讨论用于将中性原子Rydberg栅量子处理器缩放到大量Qubits的方法。 派生限制表明,在光栅之间的站点之间的远程Rydberg相互作用,在没有机械运动或交换链的情况下,可以通过10(-3)级别的缠绕栅极的Qubits的数量直接通过10(-3)水平的误差。 在两个维度和7500中三维。 可以使用稀土地区钬钬综合编码的集体寄存器编码来获得在较少数量的位点处的缩放因子。 我们对钬中的60 QUB比率寄存器的操作进行了详细分析。 将多谜贝格合奏的格式与集体编码相结合,导致1000 Qubit完全连接的量子处理器的可行设计。

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