Skip to main content

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.

الانتقال إلى التثبيت

معلومات المصدر

المستودع
hiyenwong/ai_collection
آخر نشاط في المصدر
٨ يونيو ٢٠٢٦ في ٠٨:١١
لغة SKILL.md المكتشفة
الإنجليزية
النجوم
٢
التفرعات
٠

خيارات التثبيت

يُحدَّد Prompt الذي يراجع المصدر أولًا بشكل افتراضي. يمكنك التبديل إلى أمر مباشر أو تنزيل نسخة محلية.

مراجعة ملفات المصدر

اقرأ SKILL.md وأي ملفات مرافقة يعرضها SkillsMP قبل أن تقرر التثبيت.

عرض SKILL.md

SKILL.md
تعليمات المصدر · معاينة للقراءة فقط
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
عرض على GitHub