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Dynamics of nuclear spin polarization induced and detected by coherently precessing electron spins in fluorine-doped ZnSe

机译:相干进动的电子自旋在掺氟的ZnSe中诱导和检测的核自旋极化的动力学

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摘要

We study the dynamics of optically induced nuclear spin polarization in a fluorine-doped ZnSe epilayer via time-resolved Kerr rotation. The nuclear polarization in the vicinity of a fluorine donor is induced by interaction with coherently precessing electron spins in a magnetic field applied in the Voigt geometry. It is detected by nuclei-induced changes in the electron spin coherence signal. This all-optical technique allows us to measure the longitudinal spin relaxation time T1 of the Se77 isotope in a magnetic field range from 10 to 130 mT under illumination. We combine the optical technique with radio frequency methods to address the coherent spin dynamics of the nuclei and measure Rabi oscillations, Ramsey fringes, and the nuclear spin echo. The inhomogeneous spin dephasing time T∗2 and the spin coherence time T2 of the Se77 isotope are measured. While the T1 time is on the order of several milliseconds, the T2 time is several hundred microseconds. The experimentally determined condition T1≫T2 verifies the validity of the classical model of nuclear spin cooling for describing the optically induced nuclear spin polarization.
机译:我们研究了通过时间分辨的Kerr旋转在掺氟ZnSe外延层中的光诱导核自旋极化的动力学。氟供体附近的核极化是通过在Voigt几何体中施加的磁场中与相干进动的电子自旋相互作用而引起的。它是由原子核诱导的电子自旋相干信号变化来检测的。这种全光学技术使我们能够在光照下在10至130 mT的磁场范围内测量Se77同位素的纵向自旋弛豫时间T1。我们将光学技术与射频方法相结合,以解决原子核的相干自旋动力学问题,并测量Rabi振荡,Ramsey条纹和核自旋回波。测量了Se77同位素的非均匀自旋相移时间T * 2和自旋相干时间T2。虽然T1时间大约是几毫秒,但T2时间是几百微秒。实验确定的条件T1≫T2验证了用于描述光诱导核自旋极化的经典核自旋冷却模型的有效性。

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