Observation of acoustic Landau quantization and quantum-Hall-like edge states
Abstract
Many intriguing phenomena occur for electrons under strong magnetic fields. Recently, it was proposed that an appropriate strain texture in graphene can induce a synthetic gauge field, in which the electrons behave like in a real magnetic field. This opened the door to control quantum transport by mechanical means and to explore unprecedented physics in high-field regime. Such studies have been achieved in molecular and photonic lattices. Here we report the first experimental realization of giant uniform pseudomagnetic field in acoustics by introducing a simple uniaxial deformation to acoustic graphene. Benefited from the controllability of our macroscopic platform, we observe the acoustic Landau levels in frequency-resolved spectroscopy and their spatial localization in pressure-field distributions. We further visualize the quantum-Hall-like edge states (connected to the zeroth Landau level), which have been elusive before owing to the challenge in creating large-area uniform pseudomagnetic fields. These results, highly consistent with our full-wave simulations, establish a complete framework for artificial structures under constant pseudomagnetic fields. Our findings, conceptually novel in acoustics, may offer new opportunities to manipulate sound.
Keywords
Cite
@article{arxiv.1807.08454,
title = {Observation of acoustic Landau quantization and quantum-Hall-like edge states},
author = {Xinhua Wen and Chunyin Qiu and Yajuan Qi and Liping Ye and Manzhu Ke and Fan Zhang and Zhengyou Liu},
journal= {arXiv preprint arXiv:1807.08454},
year = {2019}
}
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3 figures