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Tripartite interactions between two phase qubits and a resonant cavity

机译:两个相位量子位与谐振腔之间的三方相互作用

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Multipartite entanglement is essential for quantum computation and communication, and for fundamental tests of quantum mechanics and precision measurements. It has been achieved with various forms of quantum bits (qubits), such as trapped ions, photons and atoms passing through microwave cavities. Quantum systems based on superconducting circuits, which are potentially more scalable, have been used to control pair-wise interactions of qubits and spectroscopic evidence for three-particle entanglement was observed. Here, we report the demonstration of coherent interactions in the time domain for three directly coupled superconducting quantum systems, two phase qubits and one resonant cavity. We provide evidence for the deterministic evolution from a simple product state, through a tripartite W state, into a (bipartite) Bell state. The cavity can be thought of as a multiphoton register or an entanglement bus, and arbitrary preparation of multiphoton states in this cavity using one of the qubits and subsequent interactions for entanglement distribution should allow for the deterministic creation of another class of entanglement, a Greenberger-Horne-Zeilinger state.
机译:多部分纠缠对于量子计算和通信以及量子力学和精度测量的基础测试至关重要。它是通过各种形式的量子位(量子位)来实现的,例如捕获的离子,光子和通过微波腔的原子。基于超导电路的量子系统可能具有更大的可扩展性,已被用于控制量子位的成对相互作用,并且观察到了三粒子纠缠的光谱证据。在这里,我们报告了三个直接耦合的超导量子系统,两个相位量子位和一个谐振腔在时域中相干相互作用的演示。我们提供了从简单的产品状态到三重W状态到(二分钟)Bell状态的确定性演化的证据。可以将腔视为多光子寄存器或纠缠总线,并且使用量子位之一在该腔中任意准备多光子状态,并随后进行纠缠分布的相互作用,应确定性地创建另一类纠缠,即Greenberger-霍恩-泽林格州。

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