论文标题
通过合成的量子通道检测任意量子相关性
Detection of arbitrary quantum correlations via synthesized quantum channels
论文作者
论文摘要
量子相关是有关量子多体系统的结构和动力学的关键信息。与不同的时间顺序有多种类型的高阶量子相关性,但是现有检测方法只能访问其中的一些。最近,提出了一种基于顺序弱测量的量子感应方法,以选择性提取任意类型的相关性。但是,其实验实施仍然难以捉摸。在这里,我们演示了提取量子相关性的任意类型的提取。我们使用合成的量子通道将原始弱测量方案概括为协议,该方案可以应用于包括单个和集成量子系统在内的更普遍的场景。在此量子通道方法中,将传感器上的各种控件叠加以选择传感器 - 目标进化沿特定路径,以测量所需的量子相关。使用核磁共振技术的多功能性,我们成功提取了另一个核旋转传感器的核旋转靶标的二阶和四阶相关性。量子相关性的完整表征为了解量子多体系统,探索基本量子物理学和开发量子技术提供了一种新工具。
Quantum correlations are key information about the structures and dynamics of quantum many-body systems. There are many types of high-order quantum correlations with different time orderings, but only a few of them are accessible to the existing detection methods. Recently, a quantum-sensing approach based on sequential weak measurement was proposed to selectively extract arbitrary types of correlations. However, its experimental implementation is still elusive. Here we demonstrate the extraction of arbitrary types of quantum correlations. We generalized the original weak measurement scheme to a protocol using synthesized quantum channels, which can be applied to more universal scenarios including both single and ensemble quantum systems. In this quantum channel method, various controls on the sensors are superimposed to select the sensor-target evolution along a specific path for measuring a desired quantum correlation. Using the versatility of nuclear magnetic resonance techniques, we successfully extract the second- and fourth-order correlations of a nuclear-spin target by another nuclear-spin sensor. The full characterization of quantum correlations provides a new tool for understanding quantum many-body systems, exploring fundamental quantum physics, and developing quantum technologies.