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Finite size effects on the quantum spin Hall state in HgTe quantum wells with multiple boundaries
Cheng Zhi #,Chen Rui,Zhou Bin *
Department of Physics, Hubu University, Wuhan 430062
*Correspondence author
#Submitted by
Subject:
Funding: National Natural Science Foundation of China (No.Grant No. 11274102), the Program for New Century Excellent Talents in University of Ministry of Education of China)
Opened online:28 October 2014
Accepted by: none
Citation: Cheng Zhi,Chen Rui,Zhou Bin.Finite size effects on the quantum spin Hall state in HgTe quantum wells with multiple boundaries[OL]. [28 October 2014] http://en.paper.edu.cn/en_releasepaper/content/4614464
 
 
The finite size effect in two-dimensional topological insulator can induce an energy gap Eg in the spectrum of helical edge states for a strip of finite width. In a recent work, it has been found that when the spin-orbit coupling due to bulk-inversion asymmetry is taken into account, the energy gap Eg of the edge states features an oscillating exponential decay as a function of the strip width of the inverted HgTe quantum well. In this paper, we investigate the effects of the interface between topological insulator and normal insulator on the finite size effect in the HgTe quantum well by means of the numerical diagonalization method. The two cases of multiple boundaries are considered, i.e., the symmetric and asymmetric geometries. It is found that due to the existence of the interface between topological insulator and normal insulator this oscillatory pattern on the exponential decay induced by bulk-inversion asymmetry is modulated by the width of normal insulator regions. With the variation of the width of normal insulator regions, the shift of the Dirac point of the edge states in the spectrum and the energy gap Eg closing point in the oscillatory pattern can occur. Additionally, the effect of the spin-orbit coupling due to structure-inversion asymmetry on the finite size effects is also investigated.
Keywords:quantum spin Hall state; finite size effect; spin-orbit coupling
 
 
 

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