English

Terahertz-driven phase transition applied as a room-temperature terahertz detector

Atomic Physics 2017-09-04 v1

Abstract

There are few demonstrated examples of phase transitions that may be driven directly by terahertz-frequency electric fields, and those that are known require field strengths exceeding 1 MVcm1^{-1}. Here we report a room-temperature phase transition driven by a weak (1\ll 1 Vcm1^{-1}), continuous-wave terahertz electric field. The system consists of caesium vapour under continuous optical excitation to a high-lying Rydberg state, which is resonantly coupled to a nearby level by the terahertz electric field. We use a simple model to understand the underlying physical behaviour, and we demonstrate two protocols to exploit the phase transition as a narrowband terahertz detector: the first with a fast (20 μ\mus) nonlinear response to nano-Watts of incident radiation, and the second with a linearised response and effective noise equivalent power (NEP) 1\leq 1 pWHz1/2^{-1/2}. The work opens the door to a new class of terahertz devices controlled with low field intensities and operating around room temperature.

Keywords

Cite

@article{arxiv.1709.00262,
  title  = {Terahertz-driven phase transition applied as a room-temperature terahertz detector},
  author = {Christopher G. Wade and Matteo Marcuzzi and Emanuele Levi and Jorge M. Kondo and Igor Lesanovsky and Charles S. Adams and Kevin J. Weatherill},
  journal= {arXiv preprint arXiv:1709.00262},
  year   = {2017}
}
R2 v1 2026-06-22T21:30:15.336Z