Vavilov Maxim G, Glazman Leonid I
Center for Materials Sciences and Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Phys Rev Lett. 2005 Mar 4;94(8):086805. doi: 10.1103/PhysRevLett.94.086805.
We develop the theory of conductance of a quantum dot which carries a spin and is coupled via RKKY interaction to another spin-carrying quantum dot. The found dependence of the differential conductance on the bias and magnetic field at a fixed RKKY interaction strength may allow one to distinguish between the possible ground states of the system. Transitions between the ground states are achieved by tuning the RKKY interaction, and the nature of these transitions can be extracted from the temperature dependence of the linear conductance. The feasibility of the corresponding measurements is evidenced by recent experiments by Craig et al.
我们发展了一种量子点电导理论,该量子点带有一个自旋,并通过RKKY相互作用与另一个带自旋的量子点耦合。在固定的RKKY相互作用强度下,发现微分电导对偏置和磁场的依赖性可能使人们能够区分系统可能的基态。通过调节RKKY相互作用实现基态之间的转变,并且这些转变的性质可以从线性电导的温度依赖性中提取出来。Craig等人最近的实验证明了相应测量的可行性。