We report on the scaling behavior of V-doped (Bi,Sb)2Te3 samples in the quantum anomalous Hall regime for samples of various thickness. While previous quantum anomalous Hall measurements showed the same scaling as expected from a two-dimensional integer quantum Hall state, we observe a dimensional crossover to three spatial dimensions as a function of layer thickness. In the limit of a sufficiently thick layer, we find scaling behavior matching the flow diagram of two parallel conducting topological surface states of a three-dimensional topological insulator each featuring a fractional shift of 21e2/h in the flow diagram Hall conductivity, while we recover the expected integer quantum Hall behavior for thinner layers. This constitutes the observation of a distinct type of quantum anomalous Hall effect, resulting from 21e2/h Hall conductance quantization of three-dimensional topological insulator surface states, in an experiment which does not require decomposition of signal to separate the contribution of two surfaces. This provides a possible experimental link between quantum Hall physics and axion electrodynamics.
@article{arxiv.1706.04575,
title = {Scaling of the Quantum Anomalous Hall Effect as an Indicator of Axion Electrodynamics},
author = {S. Grauer and K. M. Fijalkowski and S. Schreyeck and M. Winnerlein and K. Brunner and R. Thomale and C. Gould and L. W. Molenkamp},
journal= {arXiv preprint arXiv:1706.04575},
year = {2017}
}