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High-Field Phenomena of Qubits

机译:量子位的高场现象

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Electron and nuclear spins are very promising candidates to serve as quantum bits (qubits) for proposed quantum computers, as the spin degrees of freedom are relatively isolated from their surroundings and can be coherently manipulated, e.g., through pulsed electron paramagnetic resonance (EPR) and nuclear magnetic resonance (NMR). For solid-state spin systems, impurities in crystals based on carbon and silicon in various forms have been suggested as qubits, and very long relaxation rates have been observed in such systems. We have investigated a variety of these systems at high magnetic fields in our multifrequency pulsed EPR/ENDOR (electron nuclear double resonance) spectrometer. A high magnetic field leads to large electron spin polarizations at helium temperatures, giving rise to various phenomena that are of interest with respect to quantum computing. For example, it allows the initialization of both the electron spin as well as hyperfine-coupled nuclear spins in a well-defined state by combining millimeter and radio-frequency radiation. It can increase the T 2 relaxation times by eliminating decoherence due to dipolar interaction and lead to new mechanisms for the coherent electrical readout of electron spins. We will show some examples of these and other effects in Si:P, SiC:N and nitrogen-related centers in diamond.
机译:电子和核自旋是非常有希望的候选者,可以用作拟议的量子计算机的量子位(qubit),因为自旋自由度与周围环境相对隔离,并且可以例如通过脉冲电子顺磁共振(EPR)进行相干操纵。核磁共振(NMR)。对于固态自旋系统,已经提出了以各种形式的基于碳和硅的晶体中的杂质作为量子位,并且在这样的系统中观察到非常长的弛豫速率。我们已经在多频脉冲EPR / ENDOR(电子核双共振)光谱仪中的高磁场下研究了多种此类系统。高磁场会导致氦气温度下的大电子自旋极化,从而引起量子计算感兴趣的各种现象。例如,通过结合毫米波辐射和射频辐射,它可以在明确定义的状态下初始化电子自旋以及超精细耦合核自旋。它可以消除偶极相互作用引起的退相干,从而增加T 2 弛豫时间,并为电子自旋的相干电读出带来新的机制。我们将在金刚石的Si:P,SiC:N和与氮有关的中心中显示这些效应和其他效应的一些示例。

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