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Nuclear spin squeezing via electric quadrupole interaction

机译:核自旋通过电动四极相互作用挤压

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Control over nuclear-spin fluctuations is essential for processes that rely on preserving the quantum state of an embedded system. For this purpose, squeezing is a viable alternative, so far that has not been properly exploited for the nuclear spins. Of particular relevance in solids is the electric quadrupole interaction (QI), which operates on nuclei having spin higher than 1/2. In its general form, QI involves an electric-field gradient (EFG) biaxiality term. Here, we showthat as this EFG biaxiality increases, it enables continuous tuning of single-particle squeezing from the one-axis twisting to the two-axis countertwisting limits. A detailed analysis of QI squeezing is provided, exhibiting the intricate consequences of EFG biaxiality. The initial states over the Bloch sphere are mapped out to identify those favorable for fast initial squeezing, or for prolonged squeezings. Furthermore, the evolution of squeezing in the presence of a phase-damping channel and an external magnetic field are investigated. We observe that dephasing drives toward an antisqueezed terminal state, the degree of which increases with the spin angular momentum. Finally, QI squeezing in the limiting case of a two-dimensional EFG with a perpendicular magnetic field is discussed, which is of importance for two-dimensional materials, and the associated beat patterns in squeezing are revealed.
机译:对核自旋波动的控制对于依赖于保留嵌入式系统的量子状态的过程至关重要。为此目的,挤压是一种可行的替代方案,到目前为止,尚未适当地剥削核旋转。特定相关性在固体中是电动四极相互作用(QI),其在旋转高于1/2的核上操作。在其一般形式中,QI涉及电场梯度(EFG)双轴性术语。在这里,随着这种EFG双轴性增加,它可以连续调整从扭曲到双轴逆住极限的单粒子挤压。提供了对QI挤压的详细分析,表现出EFG双轴性的复杂后果。在Bloch球体上的初始状态被映射出来以识别那些有利于快速初始挤压的人,或者长时间的挤压。此外,研究了在相位阻尼通道的存在和外部磁场存在下挤压的演变。我们观察到朝向反异构末端状态的驱动,其程度随着旋转角动量而增加。最后,讨论了用垂直磁场的二维EFG的限制情况下挤压的Qi,这对于二维材料具有重要性,并且揭示了挤压的相关距离图案。

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