Collectively enhanced Ramsey readout by cavity sub- to superradiant transition
Abstract
When an inverted ensemble of atoms is tightly packed on the scale of its emission wavelength or when the atoms are collectively strongly coupled to a single cavity mode, their dipoles will align and decay rapidly via a superradiant burst. However, a spread-out dipole phase distribution theory predicts a required minimum threshold of atomic excitation for superradiance to occur. Here we experimentally confirm this predicted threshold for superradiant emission on a narrow optical transition when exciting the atoms transversely and show how to take advantage of the resulting sub- to superradiant transition. A -pulse places the atoms in a subradiant state, protected from collective cavity decay, which we exploit during the free evolution period in a corresponding Ramsey pulse sequence. The final excited state population is read out via superradiant emission from the inverted atomic ensemble after a second -pulse, and with minimal heating this allows for multiple Ramsey sequences within one experimental cycle. Our scheme is a fundamentally new approach to atomic state readout characterized by its speed, simplicity, and high sensitivity. It demonstrates the potential of sensors using collective effects in cavity-coupled quantum emitters.
Cite
@article{arxiv.2306.12544,
title = {Collectively enhanced Ramsey readout by cavity sub- to superradiant transition},
author = {Eliot Bohr and Sofus L. Kristensen and Christoph Hotter and Stefan Alaric Schäffer and Julian Robinson-Tait and Jan W. Thomsen and Tanya Zelevinsky and Helmut Ritsch and Jörg Helge Müller},
journal= {arXiv preprint arXiv:2306.12544},
year = {2023}
}
Comments
Removed a duplicate paragraph