Actively controllable topological phase transition in phononic beam systems
arXiv:2009.04749 · doi:10.1016/j.jmps.2019.103824
Abstract
Topological insulators, which allow edge or interface waves but forbid bulk waves, have revolutionized our scientific cognition of acoustic/elastic systems. Due to their nontrivial topological characteristics, edge (interface)waves are topologically protected against defects and disorders. This superior and unique characteristic could lead to a wealth of new opportunities in applications of quantum and acoustic/elastic information processing. However, current acoustic/elastic topological insulators are still at an infancy stage where the theory and prediction only work in laboratories and there are still many problems left open before promoting their practical applications. One of the apparent disadvantages is their narrow working frequency range, which is the main concern in this paper. We design a one-dimensional phononic beam system made of a homogeneous epoxy central beam sandwiched by two homogeneous piezoelectric beams, and covered with extremely thin electrodes, periodically and separately placed. These electrodes are connected to external electric circuits with negative capacitors. We show that a topological phase transition can be induced and tuned by changing the values of the negative capacitors. It follows that the working frequency of the topologically protected interface mode can be widely changed, such that the working frequency range of the topological insulator can be considerably `broadened'. This intelligent topological device may also find wide applications in intelligent technologies that need controllable information processing of high precision.
References in corpus (13)
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Non-Abelian Anyons and Topological Quantum Computation
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Valley filter and valley valve in graphene
- Topological Acoustics
- Time Reversal Polarization and a Z_2 Adiabatic Spin Pump
- The Quantum Spin Hall Effect: Theory and Experiment
- Edge waves in plates with resonators: An elastic analogue of the quantum valley Hall effect
- Do Linear Dispersions of Classical Waves Mean Dirac Cones?
- Actively controllable topological phase transition in phononic beam systems
- Zone folding induced topological insulators in phononic crystals
- Exploration and prediction of topological electronic materials based on first-principles calculations
- Dial-in Topological Metamaterials Based on Bistable Stewart Platform
Cited by in corpus (8)
- Actively controllable topological phase transition in phononic beam systems
- Efficient Design of Helical Higher-Order Topological Insulators in 3D Elastic Medium
- Topological interface states induced by incident angle in the 1D elastic wave system
- The topological dynamics of continuum lattice grid structures
- A new class of higher-order topological insulators that localize energy at arbitrary multiple sites
- Low-frequency tunable topological interface states in soft phononic crystal cylinders
- Topological defect states in elastic phononic plates
- Effects of strain stiffening and electrostriction on tunable elastic waves in compressible dielectric elastomer laminates