Anomalous Weak Values Emerging from Strong Interactions between Light and Matter
Yakir Aharonov, Eliahu Cohen, Avishy Carmi, Avshalom C. Elitzur

TL;DR
This paper proposes two feasible experiments involving light-matter interactions that validate predictions of anomalous weak values and introduce the concept of counter-particles, advancing understanding of quantum pre- and post-selected states.
Contribution
It introduces novel experimental methods to validate unconventional light-matter interactions and demonstrates the emergence of counter-particles with negative variables.
Findings
Photon emission numbers differ from standard predictions.
Photon interference suggests emission from a 'phantom' position.
Validation of anomalous weak values in strong interactions.
Abstract
Some predictions regarding pre- and post-selected states are far-reaching, thereby requiring validation with standard quantum measurements in addition to the customary weak measurements used so far, as well as other advanced techniques. We go further pursuing this goal, proposing two thought experiments which incorporate novel yet feasible validation methods of unconventional light-matter interactions. An excited atom traverses a Mach-Zehnder interferometer (MZI) under a special combination of pre- and post-selection. In the first experiment, photons emitted by the superposed atom, after being hit by two laser beams, are individually counted. Despite the interaction having definitely taken place, the numbers of photons emitted from each arm of the MZI are predicted, at the ensemble level, to be different from those expected with standard stimulated emission. In the second experiment,…
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Taxonomy
TopicsQuantum Mechanics and Applications · Quantum Information and Cryptography · Advanced Thermodynamics and Statistical Mechanics
