Enhanced Rydberg-Atom Superheterodyne Detection of Hidden-Photon Dark Matter on Chips
Xiaochen Li, Bo Gao, Shigeki Matsumoto, Jie Sheng, Chuan-Yang Xing, Hong Ding
Abstract
Although hidden-photon dark matter with masses above 10-4\,eV is well motivated by inflationary production, it remains largely unexplored by terrestrial experiments. Through kinetic mixing, hidden photons induce a weak oscillating electric field above 10\,GHz. We propose to amplify this signal using a compact high-frequency distributed cavity and detect it with chip-scale Rydberg-atom superheterodyne spectroscopy. Combining resonant enhancement, large dipole moments of Rydberg atoms, and long-term stable integration, this approach can probe hidden-photon dark matter in the mass range 5 × 10-5--7× 10-4\,eV with sensitivities 3--4 orders of magnitude beyond existing limits.
Create a lesson
Related papers
High-quality axion from chain seesaw
Pei-Hong Gu
Plasma Effects Suppress Mixing-Induced Collisional Freeze-In
Shao-Ping Li, Josef Pradler
Mass spectrum and decay widths of charmonium-like mesons: A diabatic approach with complex scaling
Zi-Zhao Zhang, Bo-Chao Liu
Centrality-dependent nuclear modification from hard-soft correlations in the glasma
Coleridge Faraday, W. A. Horowitz, Björn Schenke
Generalised Dynamic Radius Jets for Robust Collider Analyses
Songshaptak De, Tousik Samui, Ritesh K. Singh
Impact of Heavy Modes on Primordial Black Hole Formation
Guo-He Li, Mian Zhu, Chunshan Lin