Precision Metrology with Rydberg Atoms
<p>We develop novel microwave sensing technologies with Rydberg atoms, which feature giant electric dipole moments. Such Rydberg quantum sensors promise to go beyond the fundamental limits of classical microwave detectors, with frequency coverage from DC to almost Terahertz.</p>
Microwave (MW) technology is one of the cornerstones in modern society. Breakthroughs in microwave measurement technology have profound impacts on cosmology, resource exploration, medical imaging, wireless communications and many other fields. We are developing novel MW sensing technologies with Rydberg atoms, which have giant electric dipole moments. Such a Rydberg quantum sensor features excellent sensitivity to MW fields and holds the promise to go beyond the fundamental limit of classical MW detectors, i.e., the Johnson–Nyquist noise limit. Moreover, unlike its classical counterparts with limited frequency tunability, a Rydberg-based sensor can measure electromagnetic fields with frequencies ranging from DC to almost Terahertz, by exploring the abundant Rydberg atomic levels. We have realized a MW detection sensitivity of ~20 nV/cm Hz^(-1/2), and demonstrated non-destructive MW measurements and information transfer. Future research will focus on implementing high-speed wireless communications and achieving MW detection capability beyond classical devices.