Department of Physics, University of Basel, Klingelbergstrasse 82, 4056 Basel, Switzerland.
Phys Rev Lett. 2012 Mar 30;108(13):136803. doi: 10.1103/PhysRevLett.108.136803. Epub 2012 Mar 28.
We study finite quantum wires and rings in the presence of a charge-density wave gap induced by a periodic modulation of the chemical potential. We show that the Tamm-Shockley bound states emerging at the ends of the wire are stable against weak disorder and interactions, for discrete open chains and for continuum systems. The low-energy physics can be mapped onto the Jackiw-Rebbi equations describing massive Dirac fermions and bound end states. We treat interactions via the continuum model and show that they increase the charge gap and further localize the end states. The electrons placed in the two localized states on the opposite ends of the wire can interact via exchange interactions and this setup can be used as a double quantum dot hosting spin qubits. The existence of these states could be experimentally detected through the presence of an unusual 4π Aharonov-Bohm periodicity in the spectrum and persistent current as a function of the external flux.
我们研究了在由化学势周期性调制引起的电荷密度波间隙存在下的有限量子线和环。我们表明,在电线末端出现的 Tamm-Shockley 束缚态在离散开链和连续统系统中对弱无序和相互作用是稳定的。低能物理可以映射到描述质量狄拉克费米子和束缚端态的 Jackiw-Rebbi 方程上。我们通过连续统模型来处理相互作用,并表明它们会增加电荷间隙并进一步使端态局域化。放置在电线两端的两个局域态上的电子可以通过交换相互作用相互作用,这种设置可以用作承载自旋量子位的双量子点。通过在光谱中存在异常的 4π Aharonov-Bohm 周期性和作为外通量函数的持续电流,可以实验检测到这些状态的存在。