Observation of converse flexoelectric effect in topological semimetals
arXiv:2410.04831 · doi:10.1038/s43246-024-00677-z
Abstract
A strong coupling between electric polarization and elastic deformation in solids is an important factor in creating useful electromechanical nanodevices. Such coupling is typically allowed in insulating materials with inversion symmetry breaking as exemplified by the piezoelectric effect in ferroelectric materials. Therefore, materials with metallicity and centrosymmetry have tended to be out of scope in this perspective. Here, we report the observation of giant elastic deformation by the application of an alternating electric current in topological semimetals (V,Mo)Te2, regardless of the centrosymmetry. Considering the crystal and band structures and the asymmetric measurement configurations in addition to the absence of the electromechanical effect in a trivial semimetal TiTe2, the observed effect is discussed in terms of a Berry-phase-derived converse flexoelectric effect in metals. The observation of the flexoelectric effect in topological semimetals paves a way for a new type of nanoscale electromechanical sensors and energy harvesting.
11 pages, 4 figures
References in corpus (7)
- Quantum Spin Hall Effect and Topological Field Effect Transistor in Two-Dimensional Transition Metal Dichalcogenides
- Critical enhancement of thermopower in a chemically tuned polar semimetal MoTe
- Anticorrelation between polar lattice instability and superconductivity in the Weyl semimetal candidate MoTe2
- Switching of band inversion and topological surface states by charge density wave
- Dynamical piezoelectric and magnetopiezoelectric effects in polar metals from Berry phases and orbital moments
- Observation of spin-polarized bands and domain-dependent Fermi arcs in polar Weyl semimetal MoTe
- Giant enhancement of cryogenic thermopower by polar structural instability in the pressurized semimetal MoTe2