Interacting atomic interferometry for rotation sensing approaching the Heisenberg Limit
arXiv:1601.02549 · doi:10.1103/PhysRevLett.117.203002
Abstract
Atom interferometers provide exquisite measurements of the properties of non-inertial frames. While atomic interactions are typically detrimental to good sensing, efforts to harness entanglement to improve sensitivity remain tantalizing. Here we explore the role of interactions in an analogy between atomic gyroscopes and SQUIDs, motivated by recent experiments realizing ring shaped traps for ultracold atoms. We explore the one-dimensional limit of these ring systems with a moving weak barrier, such as that provided by a blue-detuned laser beam. In this limit, we employ Luttinger liquid theory and find an analogy with the superconducting phase-slip qubit, in which the topological charge associated with persistent currents can be put into superposition. In particular, we find that strongly-interacting atoms in such a system could be used for precision rotation sensing. We compare the performance of this new sensor to an equivalent non-interacting atom interferometer, and find improvements in sensitivity and bandwidth beyond the atomic shot-noise limit.
18 pages, 4 figures
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Cited by in corpus (14)
- Optimal and Secure Measurement Protocols for Quantum Sensor Networks
- Imprinting persistent currents in tunable fermionic rings
- Persistent currents in rings of ultracold fermionic atoms
- Heisenberg-limited Sagnac Interferometer with Multi-particle States
- Exact results for persistent currents of two bosons in a ring lattice
- Spin-orbit coupled interferometry with ring-trapped Bose--Einstein condensates
- Self-consistent many-body metrology
- Mesoscopic Vortex-Meissner currents in ring ladders
- Persistent currents in ultracold gases
- Orbital angular momentum interference of trapped matter waves
- Quantum-enhanced atomic gyroscope with tunable precision
- Controlling the dynamical scale factor in a trapped atom Sagnac Interferometer
- Dispersion Managed Elliptical Atomtronics for Interferometry
- Sensing atomic superfluid rotation beyond the standard quantum limit