论文标题
通过单一操作抑制量子状态转移的破坏性
Suppressing decoherence in quantum state transfer with unitary operations
论文作者
论文摘要
变形是限制量子信息处理设备的性能的基本障碍。在这种情况下,将量子状态(已知或未知)传输到另一个地方的问题引起了极大的兴趣。在这项工作中,遵循最近的理论建议[Opt。工程。 {\ bf 59},061625(2020)]我们研究了量子状态依赖性和后处理的统一操作的应用,用于保护给定(多Qubit)量子状态,以违反对所有量子对所有量子的变形作用的影响。我们在量子仿真实验中观察到输出量子状态的忠诚度的增加,在量子模拟实验中,所有保护单位都是完美的,并且在具有可云可访问的量子处理器的真实实验中,在其中保护单位者本身都会受到噪声的影响。我们预计所考虑的方法对于分析传输已知量子状态的量子信息处理设备的功能可能很有用。我们还展示了开发方法在抑制量子处理器的远程物理量子位的两数Q Q量状态的过程中的适用性。
Decoherence is the fundamental obstacle limiting the performance of quantum information processing devices. The problem of transmitting a quantum state (known or unknown) from one place to another is of great interest in this context. In this work, by following the recent theoretical proposal [Opt. Eng. {\bf 59}, 061625 (2020)] we study an application of quantum state-dependent pre- and post-processing unitary operations for protecting the given (multi-qubit) quantum state against the effect of decoherence acting on all qubits. We observe the increase in the fidelity of the output quantum state both in a quantum emulation experiment, where all protecting unitaries are perfect, and in a real experiment with a cloud-accessible quantum processor, where protecting unitaries themselves are affected by the noise. We expect the considered approach can be useful for analyzing capabilities of quantum information processing devices in transmitting known quantum states. We also demonstrate an applicability of the developed approach for suppressing decoherence in the process of distributing a two-qubit state over remote physical qubits of a quantum processor.