论文标题
分布在多个腔中的多个量子位的量子纠缠状态
Generation of quantum entangled states of multiple groups of qubits distributed in multiple cavities
论文作者
论文摘要
只要腔最初位于格林贝格 - 霍格林格(GHz)纠缠状态,我们表明,可以通过三步操作创建分布在n个腔中的N组量子位的GHz状态。 N组量子位的GHz状态是通过使用n个腔中的N组Qutrit产生的。在这里,“ QUTRIT”是指一个三级量子系统,其两个最低级别代表量子,而第三级则是GHz状态创建所需的中间状态。该建议不取决于基于空腔的量子网络的架构以及耦合腔的方式。操作时间独立于Qubits数量。 GHz状态是确定性准备的,因为不需要对Qutrits或空腔状态进行测量。此外,整个操作过程中QUTRIT的第三能级几乎是激发的,因此从较高能量水平的分解受到了极大的抑制。该建议非常笼统,可以原则上应用于使用不同类型的物理Qutrit(例如,原子,量子点,NV中心,各种超导Qutrits等)创建许多Qubit的GHz状态。作为一个特定的例子,我们进一步讨论了准备在四个阵列中排列的四个一维传输线共振器中分布在四个一维传输线谐振器中的四组transmon量子置量的GHz状态(每个组组成)的实验可行性。
Provided that cavities are initially in a Greenberger-Horne-Zeilinger (GHZ) entangled state, we show that GHZ states of N-group qubits distributed in N cavities can be created via a 3-step operation. The GHZ states of the N-group qubits are generated by using N-group qutrits placed in the N cavities. Here, "qutrit" refers to a three-level quantum system with the two lowest levels representing a qubit while the third level acting as an intermediate state necessary for the GHZ state creation. This proposal does not depend on the architecture of the cavity-based quantum network and the way for coupling the cavities. The operation time is independent of the number of qubits. The GHZ states are prepared deterministically because no measurement on the states of qutrits or cavities is needed. In addition, the third energy level of the qutrits during the entire operation is virtually excited and thus decoherence from higher energy levels is greatly suppressed. This proposal is quite general and can in principle be applied to create GHZ states of many qubits using different types of physical qutrits (e.g., atoms, quantum dots, NV centers, various superconducting qutrits, etc.) distributed in multiple cavities. As a specific example, we further discuss the experimental feasibility of preparing a GHZ state of four-group transmon qubits (each group consisting of three qubits) distributed in four one-dimensional transmission line resonators arranged in an array.