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首页> 外文期刊>Physical Review X >Towards a Room-Temperature Spin Quantum Bus in Diamond via Electron Photoionization, Transport, and Capture
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Towards a Room-Temperature Spin Quantum Bus in Diamond via Electron Photoionization, Transport, and Capture

机译:通过电子光离化,运输和捕获,朝向金刚石中的室温旋转量子总线

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Diamond is a proven solid-state platform for spin-based quantum technology. The nitrogen-vacancy center in diamond has been used to realize small-scale quantum information processing and quantum sensing under ambient conditions. A major barrier in the development of large-scale quantum information processing in diamond is the connection of nitrogen-vacancy spin registers by a quantum bus at room temperature. Given that diamond is expected to be an ideal spin transport material, the coherent transport of spin directly between the spin registers offers a potential solution. Yet, there has been no demonstration of spin transport in diamond due to difficulties in achieving spin injection and detection via conventional methods. Here, we exploit detailed knowledge of the paramagnetic defects in diamond to identify novel mechanisms to photoionize, transport, and capture spin-polarized electrons in diamond at room temperature. Having identified these mechanisms, we explore how they may be combined to realize an on-chip spin quantum bus.
机译:Diamond是一种证明的基于旋转量子技术的固态平台。在环境条件下,金刚石中的氮空位中心已经用于实现小规模量子信息处理和量子感测。在金刚石中发展大规模量子信息处理的主要屏障是在室温下通过量子总线连接氮空隙旋转寄存器的连接。鉴于钻石预计是理想的自旋运输材料,直接在旋转寄存器之间直接旋转的相干运输提供了潜在的解决方案。然而,由于难以实现旋转注射和通过常规方法检测,钻石中没有旋转输送的证明。在这里,我们利用金刚石中的顺磁性缺陷的详细了解,以识别在室温下钻石中的光相,运输和捕获旋转偏振电子的新机制。已经确定了这些机制,我们探讨了如何组合以实现片上旋转量子总线。

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