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Efficient generation of Raman echo and time-domain optical data storage by electromagnetically induced transparency

机译:通过电磁感应透明性有效生成拉曼回波和时域光学数据存储

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Abstract: We have observed excitation of spin echoes and spin free induction decay (FID) by electromagnetically induced transparency (EIT) in an optically dense solid sample. The experiments are done in a double-lambda system of 605.7 nm 3H4 - 1D2 transition of Pr3$PLU@:Y2SiO5, where the 10.2 MHz ground state spin coherence is excited by low-power resonant Raman pulses. It has been shown that the spin coherence, including spin echo, is equivalent to the transparent state of EIT, and therefore a high efficiency is expected for such resonant Raman-excited spin echo. The observed efficiency of spin echo is as high as 75% of the FID signal at 5K. A background-free detection scheme is used based on EIT and enhanced nondegenerate four-wave mixing. The technique is applied in the frequency-selective time-domain optical data storage, that utilizes the spin as well as the optical inhomogeneous spectral widths. The data storage scheme is analogous to the stimulated spin echo with resonant Raman excitation of the spin coherence. We verify that the write window is determined by the spin T$-2$/ which is much longer than the optical T$- 2$/, especially at higher temperature. We find that the spin dephasing time T$-2$/ is almost constant at approximately 500 microseconds in the range of 2 to approximately 6 K, whereas the optical T$-2$/ decreases rapidly, by a factor of approximately 50, above 4 K. These results will be useful in the development of high capacity time-domain optical data storage operating at higher temperature. !21
机译:摘要:我们已经观察到了光致密实固体样品中电磁感应的透明性(EIT)对自旋回波和自旋自由感应衰减(FID)的激发。实验在Pr3 $ PLU @:Y2SiO5的605.7 nm 3H4-1D2跃迁的双λ系统中进行,其中10.2 MHz基态自旋相干由低功率共振拉曼脉冲激发。已经表明,包括自旋回波在内的自旋相干性等同于EIT的透明状态,因此,期望这种共振拉曼激发的自旋回波具有高效率。在5K时观察到的自旋回波效率高达FID信号的75%。使用基于EIT和增强的非简并四波混频的无背景检测方案。该技术应用于频率选择时域光学数据存储,该存储利用自旋以及光学非均匀光谱宽度。数据存储方案类似于具有自旋相干共振拉曼激发的受激自旋回波。我们验证写窗口是由自旋T $ -2 $ /确定的,它比光学T $ -2 $ /长得多,特别是在较高温度下。我们发现自旋相移时间T $ -2 $ /几乎恒定在2到大约6 K的范围内的约500微秒,而光学T $ -2 $ /迅速降低了约50倍。 4K。这些结果将有助于开发在较高温度下工作的高容量时域光学数据存储。 !21

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