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Acoustic Landau quantization and quantum-Hall-like edge states
- Source :
- Nature Physics. 15:352-356
- Publication Year :
- 2019
- Publisher :
- Springer Science and Business Media LLC, 2019.
-
Abstract
- Many intriguing phenomena occur for electrons under strong magnetic fields1,2. Recently, it was shown that an appropriate strain texture in graphene could induce a synthetic gauge field3–6, in which electrons behave as they do in a real magnetic field7–11. This enabled the control of quantum transport by mechanical means and allowed the unreached high-field regime to be explored. Such synthetic gauge fields have been achieved in molecular12 and photonic13 lattices. Here we report an experimental realization of a giant uniform pseudomagnetic field in acoustics by introducing a simple uniaxial deformation to the acoustic graphene. The controllability of our macroscopic platform enables us to 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 owing to the difficulty in creating large-area uniform pseudomagnetic fields5,6. These results, consistent with our full-wave simulations, establish a complete framework for artificial structures under constant pseudomagnetic fields. Our findings may also offer opportunities to manipulate sound in conceptually novel ways. A graphene-like two-dimensional sonic crystal, under uniaxial deformation, experiences a giant uniform pseudomagnetic field. This leads to the quantization of the cyclotron orbits—a kind of acoustic Landau level—that is observed here.
- Subjects :
- Physics
Condensed matter physics
Field (physics)
Texture (cosmology)
General Physics and Astronomy
Electron
Landau quantization
Quantum Hall effect
Gauge (firearms)
01 natural sciences
010305 fluids & plasmas
Quantization (physics)
Zeroth law of thermodynamics
0103 physical sciences
010306 general physics
Subjects
Details
- ISSN :
- 17452481 and 17452473
- Volume :
- 15
- Database :
- OpenAIRE
- Journal :
- Nature Physics
- Accession number :
- edsair.doi...........ae62a84eff247759812ee10a256768ce