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inverted-harmonic-oscillator-quantum-probing

Experimental probing of inverted harmonic oscillator quantum dynamics using ultracold atoms. Use when studying unstable quantum dynamics, quantum squeezing, time-reversal coherence, Wigner function tomography, or quantum simulation of inflationary field dynamics.

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hiyenwong/ai_collection
Dernière activité de la source
8 juin 2026 à 08:11
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name
inverted-harmonic-oscillator-quantum-probing
description
Experimental probing of inverted harmonic oscillator quantum dynamics using ultracold atoms. Use when studying unstable quantum dynamics, quantum squeezing, time-reversal coherence, Wigner function tomography, or quantum simulation of inflationary field dynamics.
metadata
{"arxiv_id":"2606.05125","published":"2026-06-03","category":"quantum-physics"}
# Inverted Harmonic Oscillator Quantum Probing ## Context When a quantum system passes through an unstable fixed point, the local dynamics reduces to the inverted harmonic oscillator (IHO). This produces exponentially amplified macroscopic quantum states from microscopic zero-point fluctuations. ## Core Methodology ### 1. IHO Realization with Bose-Einstein Condensates - Use AtomChip-based Bose-Einstein condensate as the quantum platform - Radio-frequency dressing flips transverse harmonic confinement into IHO potential - This creates an unstable fixed point where quantum fluctuations are exponentially amplified ### 2. Phase-Space Tomography - Follow the full Wigner function of the evolving quantum state - Reconstruct quantum state in phase space through tomographic measurements - Track both amplification and squeezing quadratures simultaneously ### 3. Squeezing Measurement - Observe sub-vacuum squeezing levels (demonstrated: 10.6(1.3) dB) - Squeezing occurs in one quadrature while amplification occurs in the orthogonal quadrature - Key metric: squeezing depth below vacuum level ### 4. Time-Reversal Coherence Certification - Test coherent reversibility by time-reversing the IHO evolution - Matter-wave interference between daughter clouds confirms quantum coherence - Coherence persists over timescales far beyond initial expansion ### 5. Applications - Force sensing with time-reversal-based coherence certification - Analog studies of quantum fluctuation amplification in inflationary field dynamics - Clean, controlled many-body platform for unstable quantum dynamics ## Key Results | Metric | Value | |--------|-------| | Squeezing depth | 10.6(1.3) dB below vacuum | | Platform | Bose-Einstein condensate on AtomChip | | Coherence | Confirmed via matter-wave interference | | Reversibility | Time-reversal of IHO evolution demonstrated | ## Pitfalls - **Thermal noise**: BEC must be sufficiently cold to observe quantum effects above thermal background - **RF dressing calibration**: Precise RF frequency and amplitude control needed to create accurate IHO potential - **Tomography overhead**: Full Wigner function reconstruction requires many measurement settings - **Decoherence timescales**: Must complete measurements before environmental decoherence destroys quantum state ## Verification - Verify squeezing below vacuum level using calibrated homodyne detection - Confirm time-reversal fidelity by comparing initial and final states - Validate Wigner function negativity as signature of non-classical state ## Activation Keywords - inverted harmonic oscillator, quantum squeezing, time-reversal coherence, Wigner tomography, Bose-Einstein condensate, AtomChip, quantum fluctuations, inflationary dynamics, 2606.05125
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