Institut für Festkörperphysik, Leibniz Universität Hannover, Appelstr. 2, D-30167 Hannover, Germany.
Physikalisch Technische Bundesanstalt, Bundesallee 100, D-38116 Braunschweig, Germany.
Phys Rev Lett. 2014 Apr 18;112(15):156601. doi: 10.1103/PhysRevLett.112.156601. Epub 2014 Apr 14.
We advance spin noise spectroscopy to the ultimate limit of single spin detection. This technique enables the measurement of the spin dynamic of a single heavy hole localized in a flat (InGa)As quantum dot. Magnetic field and light intensity dependent studies reveal even at low magnetic fields a strong magnetic field dependence of the longitudinal heavy hole spin relaxation time with an extremely long T1 of ≥180 μs at 31 mT and 5 K. The wavelength dependence of the spin noise power discloses for finite light intensities an inhomogeneous single quantum dot spin noise spectrum which is explained by charge fluctuations in the direct neighborhood of the quantum dot. The charge fluctuations are corroborated by the distinct intensity dependence of the effective spin relaxation rate.
我们将自旋噪声光谱技术推进到单自旋探测的极限。这项技术使得能够测量单个重空穴在平面(InGa)As 量子点中的自旋动力学。磁场和光强依赖性研究表明,即使在低磁场下,纵向重空穴自旋弛豫时间也具有很强的磁场依赖性,在 31 mT 和 5 K 时,T1 长达≥180 μs。对于有限的光强,自旋噪声功率的波长依赖性揭示了一个非均匀的单量子点自旋噪声谱,这可以通过量子点直接邻域中的电荷波动来解释。电荷波动通过有效自旋弛豫率的明显强度依赖性得到证实。