Joint Quantum Institute, University of Maryland, College Park, Maryland 20742, USA.
Phys Rev Lett. 2013 May 10;110(19):196803. doi: 10.1103/PhysRevLett.110.196803. Epub 2013 May 8.
We investigate phonon-induced spin and charge relaxation mediated by spin-orbit and hyperfine interactions for a single electron confined within a double quantum dot. A simple toy model incorporating both direct decay to the ground state of the double dot and indirect decay via an intermediate excited state yields an electron spin relaxation rate that varies nonmonotonically with the detuning between the dots. We confirm this model with experiments performed on a GaAs double dot, demonstrating that the relaxation rate exhibits the expected detuning dependence and can be electrically tuned over several orders of magnitude. Our analysis suggests that spin-orbit mediated relaxation via phonons serves as the dominant mechanism through which the double-dot electron spin-flip rate varies with detuning.
我们研究了由自旋轨道和超精细相互作用引起的声子诱导的单电子在双量子点内的自旋和电荷弛豫。一个简单的包含直接衰减到双点的基态和通过中间激发态间接衰减的玩具模型产生了一个电子自旋弛豫率,该弛豫率随点之间的失谐非单调变化。我们通过在 GaAs 双点上进行的实验证实了这个模型,证明了弛豫率表现出预期的失谐依赖性,并且可以在几个数量级上进行电调谐。我们的分析表明,通过声子介导的自旋轨道弛豫是双点电子自旋翻转率随失谐变化的主要机制。