Low-loss far-infrared surface phonon polaritons in suspended SrTiO3 nanomembranes
arXiv:2504.06050 · doi:10.1002/adfm.202501041
Abstract
Phonon polaritons (PhPs), excitations arising from the coupling of light with lattice vibrations, enable light confinement and local field enhancement, which is essential for various photonic and thermal applications. To date, PhPs with high confinement and low loss have been mainly observed in the mid-infrared regime and mostly in manually exfoliated flakes of van der Waals (vdW) materials. In this work, we demonstrate the existence of low-loss, thickness-tunable phonon polaritons in the far-infrared regime within transferable free-standing SrTiO3 membranes synthesized through a scalable approach, achieving high figures of merit, which are comparable to the previous record values from the vdW materials. Leveraging atomic precision in thickness control, large dimensions, and compatibility with mature oxide electronics, functional oxide membranes present a promising large-scale two-dimensional (2D) platform alternative to vdW materials for on-chip polaritonic technologies in the far-infrared regime.
References in corpus (9)
- Highly confined low-loss plasmons in graphene-boron nitride heterostructures
- Configure polaritons in twisted -MoO3
- Broad Spectral Tuning of Ultra-Low Loss Polaritons in a van der Waals Crystal by Intercalation
- A 2D ferroelectric vortex lattice in twisted BaTiO3 freestanding layers
- Gate-tunable negative refraction of mid-infrared polaritons
- Near-field examination of perovskite-based superlenses and superlens-enhanced probe-object coupling
- In-plane hyperbolic polariton tuners in terahertz and long-wave infrared regimes
- Germanium monosulfide as a natural platform for highly anisotropic THz polaritons
- Thermal and electrostatic tuning of surface phonon-polaritons in LaAlO3/SrTiO3 heterostructures