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Logical operations with single x-ray photons via dynamically-controlled nuclear resonances

机译:通过动态控制的核共振对单个X射线光子进行逻辑运算

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摘要

Photonic qubits lie at the heart of quantum information technology, often encoding information in their polarization state. So far, only low-frequency optical and infrared photons have been employed as flying qubits, as the resources that are at present easiest to control. With their essentially different way of interacting with matter, x-ray qubits would bear however relevant advantages: they are extremely robust, penetrate deep through materials, and can be focused down to few-nm waveguides, allowing unprecedented miniaturization. Also, x-rays are resonant to nuclear transitions, which are very well isolated from the environment and present long coherence times. Here, we show theoretically that x-ray polarization qubits can be dynamically controlled by nuclear Mössbauer resonances. The control knob is played by nuclear hyperfine magnetic fields, that allow via fast rotations precise processing of single x-ray quanta polarization. With such rotations, single-qubit and binary logical operations such as a destructive C-NOT gate can be implemented.
机译:光子量子位是量子信息技术的核心,通常以其偏振态编码信息。到目前为止,由于目前最容易控制的资源,仅低频光学和红外光子已被用作飞行量子比特。 X射线量子位以本质上与物质交互的方式不同而具有相关优势:它们非常坚固,可穿透材料,并可以聚焦到几纳米波导,从而实现前所未有的小型化。而且,X射线会与核跃迁发生共振,核跃迁与环境隔绝得很好,并且相干时间较长。在这里,我们从理论上证明X射线极化量子位可以由核Mössbauer共振动态控制。控制旋钮由核超精细磁场发挥作用,该磁场可以通过快速旋转精确地处理单个X射线量子极化。通过这种旋转,可以实现单量子位和二进制逻辑运算,例如破坏性的C-NOT门。

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