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High-fidelity spin entanglement using optimal control

机译:使用最佳控制的高保真自旋纠缠

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Precise control of quantum systems is of fundamental importance in quantum information processing, quantum metrology and high-resolution spectroscopy. When scaling up quantum registers, several challenges arise: individual addressing of qubits while suppressing cross-talk, entangling distant nodes and decoupling unwanted interactions. Here we experimentally demonstrate optimal control of a prototype spin qubit system consisting of two proximal nitrogen-vacancy centres in diamond. Using engineered microwave pulses, we demonstrate single electron spin operations with a fidelity F ≈0.99. With additional dynamical decoupling techniques, we further realize high-quality, on-demand entangled states between two electron spins with F >0.82, mostly limited by the coherence time and imperfect initialization. Crosstalk in a crowded spectrum and unwanted dipolar couplings are simultaneously eliminated to a high extent. Finally, by high-fidelity entanglement swapping to nuclear spin quantum memory, we demonstrate nuclear spin entanglement over a length scale of 25?nm. This experiment underlines the importance of optimal control for scalable room temperature spin-based quantum information devices.
机译:量子系统的精确控制在量子信息处理,量子计量学和高分辨率光谱学中至关重要。当扩大量子寄存器的规模时,会遇到一些挑战:在抑制串扰的同时对量子位进行单独寻址,纠缠远处的节点并解耦不需要的相互作用。在这里,我们通过实验证明了由两个金刚石中的近端氮空位中心组成的原型自旋量子位系统的最佳控制。使用工程微波脉冲,我们演示了保真度F≈0.99的单电子自旋操作。借助附加的动态解耦技术,我们进一步实现了两个电子自旋之间的高质量,按需纠缠态,其中F> 0.82,这主要受相干时间和不完美初始化的限制。同时在很大程度上消除了拥挤频谱中的串扰和不想要的偶极耦合。最后,通过高保真度纠缠交换到核自旋量子记忆,我们证明了在25?nm的长度尺度上的核自旋纠缠。该实验强调了对可扩展的基于室温自旋的量子信息设备进行最佳控制的重要性。

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