Advances in atomtronics
arXiv:2104.12239 · doi:10.3390/e23050534
Abstract
Atomtronics is a relatively new subfield of atomic physics that aims to realize the device behavior of electronic components in ultracold atom-optical systems. The fact that these systems are coherent makes them particularly interesting since, in addition to current, one can impart quantum states onto the current carriers themselves or perhaps perform quantum computational operations on them. After reviewing the fundamental ideas of this subfield, we report on the theoretical and experimental progress made towards developing externally-driven and closed loop devices. The functionality and potential applications for these atom analogs to electronic and spintronic systems is also discussed.
Accepted for publication in Entropy
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Cited by in corpus (7)
- Atomtronic circuits: from many-body physics to quantum technologies
- Perspective on new implementations of atomtronic circuits
- Persistent currents in ultracold gases
- Atomtronic multi-terminal Aharonov-Bohm interferometer
- Quantum superpositions of current states in Rydberg-atom networks
- A Gauge Field Theory of Coherent Matter Waves
- Example Exact Solutions of the Time-independent Gross-Pitaevskii and Schrödinger Equations