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A Simple Flight Mill for the Study of Tethered Flight in Insects
Published on: December 10, 2015
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To catch and reverse a quantum jump mid-flight
Z K Minev1,2, S O Mundhada3, S Shankar3
1Department of Applied Physics, Yale University, New Haven, CT, USA. zlatko.minev@aya.yale.edu.
Nature
|June 5, 2019
Summary
Researchers can now predict and control quantum jumps in superconducting atoms. By monitoring an auxiliary energy level, they can track the jump
Area of Science:
- Quantum Physics
- Atomic Physics
- Quantum Optics
Background:
- Quantum measurements yield discrete and random results, exemplified by quantum jumps between atomic energy levels.
- Quantum jumps were experimentally observed in atomic ions under specific measurement conditions.
- The timing of quantum jumps has been considered fundamentally unpredictable.
Purpose of the Study:
- To investigate if quantum jumps, despite their non-deterministic nature, can be predicted.
- To experimentally demonstrate the possibility of tracking and intervening in quantum jumps.
- To explore real-time control techniques for quantum systems.
Main Methods:
- Experimentally tracking quantum jumps in a superconducting artificial three-level atom.
- Monitoring the population of an auxiliary energy level coupled to the ground state.
- Utilizing real-time monitoring and feedback to intervene in quantum jumps mid-flight.
Main Results:
- Demonstrated that quantum jumps follow a predictable 'flight' path.
- Showed that the evolution of completed quantum jumps is continuous, coherent, and deterministic.
- Successfully caught and reversed quantum jumps mid-flight using real-time feedback.
Conclusions:
- Quantum jumps can be predicted and controlled in real-time.
- Findings support modern quantum trajectory theory and its predictions.
- Opens new avenues for real-time intervention in quantum systems, including quantum error correction.
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