Observation of Analogue Dynamic Schwinger Effect and Non-Perturbative Light Sensing in Lead Halide Perovskites
arXiv:2406.05032 · doi:10.1021/acsphotonics.5c01360
Abstract
Dielectric breakdown of physical vacuum (Schwinger effect) is the textbook demonstration of compatibility of Relativity and Quantum theory. Although observing this effect is still practically unachievable, its analogue generalizations have been shown to be more readily attainable. This paper demonstrates that a gapped Dirac semiconductor, methylammonium lead-bromide perovskite (MAPbBr), exhibits analogue dynamical Schwinger effect. Tunneling ionization under deep sub-gap mid-infrared irradiation leads to intense photoluminescence in the visible range, in full agreement with quasi-adiabatic theory. In addition to revealing a gapped extended system suitable for studying the analogue Schwinger effect, this observation holds great potential for non-perturbative field sensing, i.e., sensing electric fields through non-perturbative light-matter interactions. First, this paper illustrates this by measuring the local deviation from the nominally cubic phase of a perovskite single crystal, which can be interpreted in terms of frozen-in fields. Next, it is shown that analogue dynamic Schwinger effect can be used for nonperturbative amplification of non-parametric upconversion process in perovskites driven simultaneously by multiple optical fields. This discovery demonstrates the potential for material response beyond perturbation theory in the Schwinger regime, offering extremely sensitive light detection and amplification across an ultrabroad spectral range not accessible by conventional devices.
version accepted for publication in ACS Photonics
References in corpus (11)
- Dirac materials
- Dynamically assisted Schwinger mechanism
- Introduction to theory of high-harmonic generation in solids: tutorial
- Shining Light on Photoluminescence Properties of Metal Halide Perovskites
- The Schwinger mechanism and graphene
- The Schwinger mechanism revisited
- Out-of-equilibrium criticalities in graphene superlattices
- Mesoscopic Klein-Schwinger effect in graphene
- Spin-Electric Coupling in Lead Halide Perovskites
- Effective model for studying optical properties of lead-halide perovskites
- Massive Dirac-Pauli physics in lead-halide perovskites