Massive Dirac-Pauli physics in lead-halide perovskites
arXiv:2407.04450 · doi:10.1038/s41535-025-00754-7
Abstract
In standard quantum electrodynamics (QED), the so-called non-minimal (Pauli) coupling is suppressed for elementary particles and has no physical implications. Here, we show that the Pauli term naturally appears in a known family of Dirac materials -- the lead-halide perovskites, suggesting a novel playground for the study of analogue QED effects. We outline measurable manifestations of the Pauli term in the phenomena pertaining to (i) relativistic corrections to bound states (ii) the Klein paradox, and (iii) spin effects in scattering. In particular, we demonstrate that (a) the binding energy of an electron in the vicinity of a positively charged defect is noticeably decreased due to the polarizability of lead ions and the appearance of a Darwin-like term, (b) strong spin-orbit coupling due to the Pauli term affects the exciton states, and (c) scattering of an electron off an energy barrier with broken mirror symmetry produces spin polarization in the outgoing current. Our study adds to understanding of quantum phenomena in lead-halide perovskites, and paves the way for tabletop simulations of analogue Dirac-Pauli equations.
version accepted for publication in npj Quantum Materials
References in corpus (18)
- The electronic properties of graphene
- Topological Insulators
- Topological insulators and superconductors
- Weyl and Dirac Semimetals in Three Dimensional Solids
- Chiral tunneling and the Klein paradox in graphene
- Quantum interference and Klein tunneling in graphene heterojunctions
- Bright triplet excitons in lead halide perovskites
- Dirac materials
- Local polar fluctuations in lead halide perovskite crystals
- Giant Rashba Splitting in CH3NH3PbBr3 Organic-Inorganic Perovskite
- History and Physics of the Klein Paradox
- Coherent spin dynamics of electrons and holes in CsPbBr perovskite crystals
- Asymptotically Safe QED
- Triviality of quantum electrodynamics revisited
- Precision Measurement of Trident Production in Strong Electromagnetic Fields
- Spin-Electric Coupling in Lead Halide Perovskites
- Effective model for studying optical properties of lead-halide perovskites
- Bond polarizability as a probe of local crystal fields in hybrid lead-halide perovskites