Low-energy effective Hamiltonian and end states of an inverted HgTe nanowire
arXiv:2505.07478 · doi:10.1016/j.physe.2025.116354
Abstract
The band inversion transition in a cylindrical HgTe nanowire is inducible via varying the nanowire radius. Here we derive the low-energy effective Hamiltonian describing the band structure of the HgTe nanowire close to the fundamental band gap. Because both the and subbands have quadratic dependence on when the gap closes, we need to consider at least three subbands, i.e., the , , and subbands, in building the effective Hamiltonian. The resulting effective Hamiltonian is block diagonal and each block is a matrix. End states are found in the inverted regime when we solve the effective Hamiltonian with open boundary condition.
6 pages, 4 figure, published version
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