Klein Tunneling of Gigahertz Elastic Waves in Nanoelectromechanical Metamaterials
arXiv:2408.04473 · doi:10.1016/j.device.2024.100474
Abstract
Klein tunneling, the perfect transmission of a normally incident relativistic particle through an energy barrier, has been tested in various electronic, photonic, and phononic systems. Its potential in guiding and filtering classical waves in the Ultra High Frequency regime, on the other hand, has not been explored. Here, we report the realization of acoustic Klein tunneling in a nanoelectromechanical metamaterial system operating at gigahertz frequencies. The piezoelectric potential profiles are obtained by transmission-mode microwave impedance microscopy, from which reciprocal-space maps can be extracted. The transmission rate of normally incident elastic waves is near unity in the Klein tunneling regime and drops significantly outside this frequency range, consistent with microwave network analysis. Strong angular dependent transmission is also observed by controlling the launching angle of the emitter interdigital transducer. This work broadens the horizon in exploiting high-energy-physics phenomena for practical circuit applications in both classical and quantum regimes.
15 pages, 5 figures, 14 pages of SI
References in corpus (12)
- Chiral tunneling and the Klein paradox in graphene
- Topological Photonics
- Andreev reflection and Klein tunneling in graphene
- Quantum interference and Klein tunneling in graphene heterojunctions
- Veselago Lens for Electrons: Focusing and Caustics in Graphene p-n Junctions
- Evidence of Klein tunneling in graphene p-n junctions
- Transport measurements across a tunable potential barrier in graphene
- Conductance of p-n-p graphene structures with 'air-bridge' top gates
- Extremal transmission and beating effect of acoustic wave in two-dimensional sonic crystal
- Majorana-like zero modes in Kekulé distorted sonic lattices
- Observation of Gigahertz Topological Valley Hall Effect in Nanoelectromechanical Phononic Crystals
- Nanoscale Imaging of Super-High-Frequency Microelectromechanical Resonators with Femtometer Sensitivity