English

Terahertz Strong-Field Physics without a Strong External Terahertz Field

Mesoscale and Nanoscale Physics 2019-03-15 v1

Abstract

Traditionally, strong-field physics explores phenomena in matter (atoms, molecules, and solids) driven by an extremely strong laser field nonperturbatively. However, even in the complete absence of an external electromagnetic field, strong-field phenomena can arise when matter strongly couples with the zero-point field of the quantum vacuum state, i.e., fluctuating electromagnetic waves whose expectation value is zero. Some of the most striking examples of this occur in a cavity setting, in which an ensemble of two-level atoms resonantly interacts with a single photonic mode of vacuum fields, producing vacuum Rabi splitting. In particular, the nature of the matter-vacuum-field coupled system fundamentally changes when the coupling rate (equal to one half of the vacuum Rabi splitting) becomes comparable to, or larger than, the resonance frequency. In this so-called ultrastrong coupling regime, a non-negligible number of photons exist in the ground state of the coupled system. Furthermore, the coupling rate can be cooperatively enhanced (via so-called Dicke cooperativity) when the matter is comprised of a large number of identical two-level particles, and a quantum phase transition is predicted to occur as the coupling rate reaches a critical value. Low-energy electronic or magnetic transitions in many-body condensed matter systems with large dipole moments are ideally suited for searching for these predicted phenomena. Here, we discuss two condensed matter systems that have shown cooperative ultrastrong interactions in the terahertz frequency range: a Landau-quantized two-dimensional electron gas interacting with high-quality-factor cavity photons, and an Er3+^{3+} spin ensemble interacting with Fe3+^{3+} magnons in ErFeO3_3.

Keywords

Cite

@article{arxiv.1901.06749,
  title  = {Terahertz Strong-Field Physics without a Strong External Terahertz Field},
  author = {Motoaki Bamba and Xinwei Li and Junichiro Kono},
  journal= {arXiv preprint arXiv:1901.06749},
  year   = {2019}
}

Comments

12 pages, 4 figures

R2 v1 2026-06-23T07:17:07.533Z